Literature DB >> 25378918

Comparing the effectiveness of small-particle versus large-particle inhaled corticosteroid in COPD.

Dirkje S Postma1, Nicolas Roche2, Gene Colice3, Elliot Israel4, Richard J Martin5, Willem Mc van Aalderen6, Jonathan Grigg7, Anne Burden8, Elizabeth V Hillyer8, Julie von Ziegenweidt8, Gokul Gopalan9, David Price10.   

Abstract

PURPOSE: Small airway changes and dysfunction contribute importantly to airway obstruction in chronic obstructive pulmonary disease (COPD), which is currently treated with inhaled corticosteroids (ICS) and long-acting bronchodilators at Global initiative for Obstructive Lung Disease (GOLD) grades 2-4. This retrospective matched cohort analysis compared effectiveness of a representative small-particle ICS (extrafine beclomethasone) and larger-particle ICS (fluticasone) in primary care patients with COPD. PATIENTS AND METHODS: Smokers and ex-smokers with COPD ≥ 40 years old initiating or stepping-up their dose of extrafine beclomethasone or fluticasone were matched 1:1 for demographic characteristics, index prescription year, concomitant therapies, and disease severity during 1 baseline year. During 2 subsequent years, we evaluated treatment change and COPD exacerbations, defined as emergency care/hospitalization for COPD, acute oral corticosteroids, or antibiotics for lower respiratory tract infection.
RESULTS: Mean patient age was 67 years, 57%-60% being male. For both initiation (n=334:334) and step-up (n=189:189) patients, exacerbation rates were comparable between extrafine beclomethasone and fluticasone cohorts during the 2 year outcome period. Odds of treatment stability (no exacerbation or treatment change) were significantly greater for patients initiating extrafine beclomethasone compared with fluticasone (adjusted odds ratio 2.50; 95% confidence interval, 1.32-4.73). Median ICS dose exposure during 2 outcome years was significantly lower (P<0.001) for extrafine beclomethasone than fluticasone cohorts (315 μg/day versus 436 μg/day for initiation, 438 μg/day versus 534 μg/day for step-up patients).
CONCLUSION: We observed that small-particle ICS at significantly lower doses had comparable effects on exacerbation rates as larger-particle ICS at higher doses, whereas initiation of small-particle ICS was associated with better odds of treatment stability during 2-years' follow-up.

Entities:  

Keywords:  COPD exacerbation; extrafine particle; matched cohort analysis; real life; small airways

Mesh:

Substances:

Year:  2014        PMID: 25378918      PMCID: PMC4207569          DOI: 10.2147/COPD.S68289

Source DB:  PubMed          Journal:  Int J Chron Obstruct Pulmon Dis        ISSN: 1176-9106


Introduction

Chronic obstructive pulmonary disease (COPD) is a heterogeneous disorder characterized by chronic inflammation in airway walls and lung tissue, dysfunctional repair and defense mechanisms, excessive mucus production, and changes in the small peripheral airways.1,2 These changes include thickening of small airway walls, loss of elasticity, airway obstruction, and accompanying emphysema.3–5 A recent study found that loss of functional small airways may precede the development of emphysema in COPD and thus the small airways may constitute an appropriate target for treatment.6,7 Consensus practice guidelines for COPD recommend the use of inhaled corticosteroids (ICS) together with inhaled long-acting bronchodilators for patients at high risk of exacerbations, ie, with either forced expiratory volume in 1 second (FEV1) <50% predicted or a history of repeated exacerbations.1 In randomized controlled trials, ICS reduce COPD exacerbations but are associated with a slight increase in risk of pneumonia.1,8–10 In clinical practice, different from current guideline recommendations, ICS monotherapy, usually with larger-particle ICS, is still being used for treatment of COPD.11–13 Because COPD starts in the small airways, a pharmacological approach targeting the small airways with small-particle ICS might be beneficial. It may, however, be difficult to capture benefits related to small particle size in randomized controlled trials, which usually recruit selected patients who are cared for in a controlled context. Possible benefits might be more evident in real-life patients, whose adherence is often suboptimal and who may have COPD associated with other diseases, for example, asthma-COPD overlap syndrome.1 The aim of this retrospective observational study was to compare the effectiveness of a representative small-particle ICS, extrafine beclomethasone,14–16 and a larger-particle-size ICS, fluticasone, in a broad, real-life primary care population of patients with COPD. Our hypothesis was that treatment with small-particle ICS would be associated with improved management and control of COPD, as compared with larger-particle ICS, because of better deposition throughout the lungs and small airways.

Methods

Study design and patients

We performed retrospective matched cohort analyses using de-identified patient information (1996–2010) from >450 primary care practices throughout the UK subscribing to the General Practice Research Database (now in the Clinical Practice Research Datalink)17 and approximately 300 practices subscribing to the Optimum Patient Care Research Database.18 These two large electronic datasets, described in detail elsewhere,17–21 are frequently used for observational research. Patient characteristics were cross-referenced between the two datasets to avoid duplication of individuals. The two analyses examined patients prescribed their first ICS treatment (initiation sample) and those prescribed an increase in ICS dose (step-up sample) for COPD as either extrafine beclomethasone (Qvar; Teva Pharmaceuticals, Petach Tikva, Israel) or a commonly prescribed large-particle ICS, fluticasone (Flixotide; GlaxoSmithKline plc, London, UK), by pressurized metered-dose inhaler. We included male and female patients, ≥40 years old at the time of the index study prescription (index date), who had: 1) a diagnostic code for COPD, and 2) two or more prescriptions for COPD at different time points during the preceding year (baseline). The baseline year COPD prescriptions could be for any combination of the following: short-acting β2-agonist (SABA), long-acting β2-agonist (LABA), short-acting muscarinic antagonist (SAMA), long-acting muscarinic antagonist (LAMA), theophylline, and, for patients in the step-up sample only, including an ICS. The diagnostic code for COPD could be recorded at any time relative to the index date ICS prescription. Eligible patients had to be registered at the same general practice for at least 3 consecutive years, including 1 year before (baseline year) and 2 years after the index date (outcome period). In practice COPD can be associated with or misdiagnosed as asthma; therefore, eligible patients could also have had an asthma diagnostic code but only if recorded for the first time after 40 years of age. Patients were excluded if they had a coded diagnosis pre-40-years for asthma or at any time for any chronic respiratory disease other than COPD (exclusions listed in Table S1). In addition, during the matching process (see below), we excluded non-smokers and patients without spirometric evidence of COPD (ie, without post-bronchodilator ratio of FEV1 to forced vital capacity [FVC] [FEV1/FVC] <0.7).

Outcome measures

Exacerbation rate and odds of COPD treatment success were the two coprimary effectiveness measures. An exacerbation was defined as the occurrence of any one of the following: acute use of oral corticosteroids; unscheduled hospital admission or emergency department (ED) attendance for COPD or respiratory-related event; lower respiratory tract infection treated with antibiotics; or prescription for antibiotics with a lower respiratory database code within a ±5 day window. The absence of an exacerbation during the outcome period defined COPD treatment success. Secondary effectiveness measures included the time to first exacerbation and treatment stability, defined as no treatment change plus no exacerbation. Treatment change was defined as an increase in ICS dose (of ≥50%) and/or additional therapy (new since baseline year). Other outcomes examined included the hospitalization rate for lower respiratory causes; mortality rate after the study; oral candidiasis (coded diagnosis or therapy, namely, oral antifungal prescriptions); and two definitions of pneumonia: 1) unconfirmed cases with coded pneumonia diagnosis, and 2) pneumonia confirmed by chest radiograph or hospitalization within 1 month of diagnosis code. All outcome measures were derived from GP-provided Read codes in the electronic databases. All ICS doses were standardized to equivalency with extrafine beclomethasone doses for the analyses, using a 1:1 ratio for extrafine beclomethasone and all fluticasone propionate formulations, and for both the latter a 1:2 dose ratio relative to budesonide and larger-particle chlorofluorocarbon-or hydrofluoroalkane-beclomethasone (Clenil Modulite; Chiesi Ltd, Cheadle, UK). The mean daily ICS dose exposure during baseline and outcome years was calculated as the dispensed amount divided by 365 (baseline year) or 730 (outcome period).

Statistical analysis

We conducted a matched cohort analysis because the exploratory analysis found baseline differences between treatment cohorts in both initiation and step-up samples. Unmatched patients prescribed extrafine beclomethasone tended to be slightly older and to have fewer baseline exacerbations than those in the fluticasone cohorts. Most importantly, the index date, which was later for extrafine beclomethasone cohorts, was a strongly confounding variable because of trends over time for earlier COPD diagnosis and treatment. Hospitalization and mortality rates were significantly lower, and changes in therapy significantly more likely, with later index dates. Therefore, to eliminate these and minimize other baseline differences between treatment cohorts, we matched in 1:1 ratio on the following criteria: sex; age (±5 years); number of baseline year COPD exacerbations (0, 1, ≥2); year of index prescription (±1 year for the initiation sample and ±2 years for the step-up sample); and baseline therapy (categorized as a) SABA/SAMA/SABA + SAMA; b) LABA ± SABA ± SAMA; c) LAMA ± SABA ± SAMA; d) LABA + LAMA ± SABA ± SAMA, and e) other). In addition, for the step-up sample, we matched on mean daily ICS dose exposure during baseline (categorized as 0–250, 251–500, and >500 μg/day). Finally, we matched on smoking status; confirmation of COPD ever via post-bronchodilator FEV1/FVC ratio <0.7; and age at first asthma diagnosis (<40 years old or ≥40 years old/no asthma diagnosis) as a means of subsequently excluding – without losing matched groupings – all non-smokers, patients without confirmed COPD, and patients with asthma diagnosed before age 40. Summary statistics were produced for all baseline and outcome variables. For patients with available FEV1 values, the Global initiative for Obstructive Lung Disease (GOLD) grade of severity of airflow limitation was determined.22 We compared baseline characteristics and unadjusted outcome variables for matched cohorts using conditional logistic regression, categorizing heavily skewed data. The list of potential confounders considered for the adjusted analyses included those differing between treatment cohorts at baseline (P<0.10) and variables predictive (P<0.05) of each outcome variable in multivariate analyses (Table S2). Pearson and Spearman correlation coefficients were applied, together with clinical interpretation, to eliminate variables presenting collinearity issues in the regression modeling of outcomes. We used a conditional Poisson regression model to calculate adjusted relative rates of exacerbations and of oral candidiasis. The adjusted odds of achieving COPD treatment success and treatment stability, and of having a treatment change, were compared between cohorts using conditional binary logistic regression models. A Cox proportional hazards model, adjusted for baseline confounders, was used to examine the time to first exacerbation and post-study mortality. (Patients had to be alive during the full 2 year outcome period to be eligible for the study). To account for multiple comparisons, we controlled for false discovery rate if more than one of the co-primary endpoints were significant. The composite outcome measures and analyses were prespecified according to standard operating procedures of the research group.23 All analyses were carried out using IBM SPSS Statistics version 19 (IBM Corporation, Armonk, NY, USA), SAS version 9.2 (SAS Institute Inc., Cary, NC, USA), and Microsoft Excel 2007 (Microsoft Corporation, Redmond, WA, USA). We defined statistically significant results as P<0.05.

Results

Patient identification in the datasets and subsequent matching of 384 patients in each initiation cohort, and 189 patients in each step-up cohort, are depicted in Figures S1 and S2.

Initiation sample

At baseline, the clinical characteristics of patients in extrafine beclomethasone and fluticasone cohorts were similar (Tables 1 and S3). Approximately 60% of patients were male, and the mean age was 67 years. There were several significant differences between cohorts (eg, in index prescription date, cardiac disease diagnosis, and use of some drugs), but these differences were small and not clinically meaningful. Most patients were GOLD grade 2 or 3.22
Table 1

Summary of key baseline patient characteristics by matched treatment cohorts and smoking status

CharacteristicInitiation sample
Step-up sample
Extrafine BDP(n=334)Fluticasone(n=334)P-valueaExtrafine BDP(n=189)Fluticasone(n=189)P-valuea
Male sex, n (%)b201 (60.2)201 (60.2)n/a108 (57.1)108 (57.1)n/a
Age at index date, mean (SD)b66.5 (8.4)66.6 (8.1)0.6167.2 (8.3)67.1 (8.6)0.79
BMI in kg/m2, mean (SD)c26.4 (5.5)26.1 (4.7)0.4626.5 (5.2)26.6 (5.5)0.66
Charlson comorbidity index score, n (%)
 0205 (61.4)195 (58.4)0.48119 (63.0)100 (52.9)0.13
 170 (21.0)67 (20.1)30 (15.9)47 (24.9)
 228 (8.4)46 (13.8)26 (13.8)21 (11.1)
 ≥331 (9.3)26 (7.8)14 (7.4)21 (11.1)
Current smoker, n (%)165 (49.7)162 (48.8)0.8175 (39.9)78 (41.5)0.74
Ex-smoker, n (%)167 (50.3)170 (51.2)113 (60.1)110 (58.5)
Index prescription date, mean (SD)b2003.1 (2.3)2002.8 (2.3)<0.0012003.3 (2.2)2002.7 (2.2)<0.001
Recorded comorbidity, n (%)
 Asthma diagnosis183 (54.8)187 (56.0)0.74141 (74.6)145 (76.7)0.63
 Rhinitis diagnosis38 (11.4)48 (14.4)0.2528 (14.8)31 (16.4)0.63
 GERD diagnosis49 (14.7)54 (16.2)0.5826 (13.8)30 (15.9)0.56
 Cardiac disease diagnosis70 (21.0)45 (13.5)0.01045 (23.8)34 (18.0)0.15
Exacerbations, n (%)b
 0 (COPD treatment success)131 (39.2)131 (39.2)n/a73 (38.6)73 (38.6)n/a
 181 (24.3)81 (24.3)33 (17.5)33 (17.5)
 ≥2122 (36.5)122 (36.5)83 (43.9)83 (43.9)
 Patients with ≥4 exacerbations39 (11.7)28 (8.4)29 (15.3)26 (13.8)
Recorded %predicted FEV1, n (%)300 (89.8)280 (83.8)169 (89.4)163 (86.2)
 %predicted FEV1, mean (SD)52.9 (17.9)52.5 (18.7)0.9055.3 (19.3)52.4 (17.9)0.21
 %predicted FEV1 <60%, n (%)202 (67.3)193 (68.9)101 (59.8)108 (66.3)
GOLD grade22,c, n (%)
 GOLD 115 (5.4)19 (7.2)0.7512 (7.9)7 (4.5)0.12
 GOLD 2126 (45.5)109 (41.3)73 (48.0)74 (47.7)
 GOLD 3106 (38.3)104 (39.4)51 (33.6)51 (32.9)
 GOLD 430 (10.8)32 (12.1)16 (10.5)23 (14.8)
Baseline therapy, n (%)b
 SABA154 (46.1)128 (38.3)0.02788 (46.6)77 (40.7)0.057
 SAMA22 (6.6)26 (7.8)11 (5.8)5 (2.6)
 SAMA + SABA114 (34.1)136 (40.7)35 (18.5)52 (27.5)
 LABA ± SAMA ± SABA33 (9.9)33 (9.9)51 (27.0)51 (27.0)
 LAMA ± SAMA ± SABA7 (2.1)7 (2.1)2 (1.1)2 (1.1)
 LAMA + LABA ± SAMA ± SABA1 (0.3)1 (0.3)2 (1.1)2 (1.1)
 Other3 (0.9)3 (0.9)00
LABA during baseline year, n (%)37 (11.1)35 (10.5)0.4753 (28.0)53 (28.0)n/a
COPD prescriptions, median (IQR)6 (3–10)6 (3–11)0.609 (5–13)10 (6–14)0.16
Mean daily ICS dose, n (%)b,d
 1–50 μg/dn/a20 (10.6)11 (5.8)0.13
 51–100 μg/d47 (24.9)46 (24.3)
 101–200 μg/d51 (27.0)60 (31.7)
 201–400 μg/d51 (27.0)49 (25.9)
 >400 μg/d20 (10.6)23 (12.2)
Oral candidiasis,e diagnosis/Rx, n (%)10 (3.0)11 (3.3)0.8210 (5.3)5 (2.6)0.15
≥1 inpatient admission for COPD/lower respiratory condition, n (%)4 (1.2)6 (1.8)0.531 (0.5)1 (0.5)1.0
Antibiotic prescriptions for LRTI, n (%)
 0 prescription218 (65.3)216 (64.7)0.39123 (65.1)121 (64.0)
 1 prescription64 (19.2)80 (24.0)37 (19.6)36 (19.0)0.67
 ≥2 prescriptions52 (15.6)38 (11.4)29 (15.3)32 (16.9)
 All patients with ≥4 prescriptions13 (3.9)5 (1.5)3 (1.6)10 (5.3)

Notes:

Matched cohorts were compared using conditional logistic regression

matching variable (age matching was ±5 years and index prescription date ±1 year for the initiation sample and ±2 years for the step-up sample)

recorded BMI data were available for 331 (99%) and 328 (98%) patients in extrafine beclomethasone and fluticasone initiation cohorts, respectively, and for 185 (98%) and 184 (97%) patients in extrafine beclomethasone and fluticasone step-up cohorts, respectively. Recorded GOLD severity data were available for 277 (83%) and 264 (79%) patients in extrafine beclomethasone and fluticasone initiation cohorts, respectively, and for 152 (80%) and 155 (82%) patients in extrafine beclomethasone and fluticasone step-up cohorts, respectively

the doses of ICS were standardized to equivalence with extrafine beclomethasone and fluticasone; thus, baseline doses of large-particle beclomethasone and budesonide were halved. The daily dose was calculated as the number of days’ supply divided by number of prescription days

oral candidiasis was identified through coded diagnosis or therapy for same, namely, oral antifungal prescriptions.

Abbreviations: BDP, beclomethasone dipropionate; BMI, body mass index; COPD, chronic obstructive pulmonary disease; diagnosis/Rx, coded diagnosis or therapy for same; FEV1, forced expiratory volume in 1 second; GERD, gastroesophageal reflux disease; GOLD, Global initiative for chronic Obstructive Lung Disease; ICS, inhaled corticosteroid; IQR, interquartile range; n/a, not applicable; LABA, long-acting β2-agonist; LAMA, long-acting muscarinic antagonist; LRTI, lower respiratory tract infection; Rx, therapy; SABA, short-acting β2-agonist; SAMA, short-acting muscarinic antagonist; SD, standard deviation.

Prescribed index date doses of extrafine beclomethasone were significantly lower than those of fluticasone (median interquartile range [IQR], 200 [200-400] versus 500 [500-1,000] μg/d; P<0.001; Figure 1).
Figure 1

Daily dose of extrafine beclomethasone and larger-particle fluticasone as prescribed on the index date for (A) the initiation sample and (B) the step-up sample.

Notes: P<0.001 for the differences between cohorts. Percentages may not add up to 100% because of rounding; x-axis not to scale.

Abbreviations: BDP, beclomethasone dipropionate; FP, fluticasone propionate.

There were no significant differences between cohorts in the unadjusted or adjusted coprimary outcome measures (Table 2). Exacerbation rates fell during the 2 year outcome period relative to baseline in both cohorts (Figure 2 and Table 3); one third of patients in each cohort experienced COPD treatment success (no COPD exacerbation during the 2 outcome years).
Table 2

Unadjusted and adjusted results during the 2 year outcome period for the matched cohorts of the initiation sample

OutcomeExtrafine BDP(n=334)Fluticasone(n=334)Unadjusted odds, hazard, or rate ratio for extrafine BDP (95% CI)Adjusted odds, hazard, or rate ratio for extrafine BDP (95% CI)
Coprimary outcome measures
 COPD treatment success (0 exacerbations)118 (35.3)119 (35.6)OR 0.98 (0.70–1.39)aOR 1.01 (0.70–1.46)b
 Exacerbations over 2 yearsRR 1.05 (0.86–1.30)aRR 1.07 (0.87–1.33)c
 0118 (35.3)119 (35.6)
 170 (21.0)72 (21.6)
 2–366 (19.8)83 (24.9)
 4–649 (14.7)30 (9.0)
 ≥731 (9.3)30 (9.0)
Secondary outcome measures
 Time to first exacerbation, median (95% CI), days419 (315–523)413 (306–520)HR 1.07 (0.84–1.35)aHR 1.02 (0.79–1.32)d
 Treatment stability (no Rx change or additional Rx)66 (19.8)52 (15.6)OR 1.40 (0.91–2.16)aOR 2.50 (1.32–4.73)e
 Treatment change183 (54.8)209 (62.6)OR 0.71 (0.51–0.98)aOR 0.49 (0.32–0.75)f
 Oral candidiasis, diagnosis/Rx28 (8.4)36 (10.8)RR 1.04 (0.53–2.01)P-valueaaRR 1.06 (0.59–1.90)g

Disaggregated outcome measures
 1 oral corticosteroid course58 (17.4)51 (15.3)0.44
 ≥2 oral corticosteroid courses56 (16.8)52 (15.6)
 1 lower respiratory infection + antibiotic Rx69 (20.7)72 (21.6)0.020
 ≥2 lower respiratory infections + antibiotic Rx89 (26.6)63 (18.9)
 ≥1 hospitalization for COPD or lower respiratory12 (3.6)9 (2.7)0.49
Daily ICS dose (μg/d), median (IQR)315 (151–459)436 (206–740)<0.001
Daily SABA dose (μg/d), median (IQR)822 (384–1,534)918 (384–1,534)0.22
Increase in ICS dose by ≥50%96 (28.7)68 (20.4)0.017
Additional new therapy157 (47.0)194 (58.1)0.002

Notes: Data are n (%) unless otherwise indicated. Treatment change was defined as the first change and could include an increase in ICS dose and/or additional therapy. Additional new therapy was new for those patients and could be at any time during the 2 outcome years; patients could have received ≥1 additional therapy.

Conditional logistic regression. Adjusted for baseline

theophylline prescriptions and GERD diagnosis and/or therapy

antibiotics use, LABA, number of primary care consultations, and year of first coded diagnosis at practice

rhinitis diagnosis, amitriptyline, antibiotics use, number of COPD prescriptions, and time from first coded diagnosis at practice to index date

year of index date

year of index date and time from first coded diagnosis at practice to index date

cardiac disease diagnosis, GERD diagnosis and/or therapy, number of COPD prescriptions, and oral candidiasis.

Abbreviations: aHR, adjusted hazard ratio; aOR, adjusted odds ratio; aRR, adjusted rate ratio; BDP, beclomethasone dipropionate; CI, confidence interval; COPD, chronic obstructive pulmonary disease; diagnosis/Rx, coded diagnosis or therapy for same; ICS, inhaled corticosteroid; IQR, interquartile range; Rx, treatment; SABA, short-acting β2-agonist; OR, odds ratio; HR, hazard ratio; RR, rate ratio; GERD, gastroesophageal reflux disease; LABA, long-acting β2-agonist.

Figure 2

Percentage of patients experiencing 0, 1, or ≥2 COPD exacerbations during the baseline year and years 1 and 2 of the 2 year outcome period in (A) the initiation sample and (B) the step-up sample.

Abbreviations: COPD, chronic obstructive pulmonary disease; BDP, beclomethasone dipropionate.

Table 3

Exacerbation rates during baseline and outcome periods

ExacerbationsInitiation sample
Step-up sample
Extrafine BDP(n=334)Fluticasone(n=334)P-valueaExtrafine BDP(n=189)Fluticasone(n=189)P-valuea
Baseline year, mean (SD)1.4 (1.8)1.4 (1.8)0.471.7 (2.0)1.7 (2.0)1.0
 Median (IQR)1 (0–2)1 (0–2)1 (0–2)1 (0–2)
Outcome year 1, mean (SD)1.18 (1.89)1.07 (1.73)0.431.46 (2.01)1.31 (1.92)0.47
 Median (IQR)0 (0–2)0 (0–2)1 (0–2)1 (0–2)
Outcome year 2, mean (SD)1.14 (1.90)1.13 (2.01)0.951.32 (1.91)1.51 (2.09)0.33
 Median (IQR)0 (0–2)0 (0–1)1 (0–2)1 (0–2)

Note:

Matched cohorts were compared using conditional logistic regression.

Abbreviations: BDP, beclomethasone dipropionate; IQR, interquartile range; SD, standard deviation.

The adjusted odds of treatment stability (no exacerbation or treatment change) were significantly better for extrafine beclomethasone (adjusted odds ratio [OR], 2.50; 95% confidence interval [CI], 1.32–4.73), mainly driven by significantly lower odds of treatment change in that cohort (Table 2). Treatment changes during the outcome period are depicted in Figure 3. An increase in ICS dose by ≥50% was significantly more frequent in the extrafine beclomethasone cohort, while additional therapy was significantly more frequent in the fluticasone cohort (Table 2). The mean daily ICS dose exposure during outcome was significantly lower in the extrafine beclomethasone cohort (Table 2 and Figure 4).
Figure 3

Changes in treatment and ICS dose during the 2 year outcome period for the (A) extrafine beclomethasone initiation cohort, (B) fluticasone initiation cohort, (C) extrafine beclomethasone step-up cohort, (D) fluticasone step-up cohort.

Note: “Other” includes LTRA and theophylline.

Abbreviations: BDP, beclomethasone dipropionate; FDC, fixed-dose combination ICS-LABA; ICS, inhaled corticosteroid; LABA, long-acting β2-agonist; LAMA, long-acting muscarinic antagonist; LTRA, leukotriene receptor antagonist.

Figure 4

Mean daily ICS dose exposure for extrafine beclomethasone and fluticasone cohorts during the 2 year outcome period by (A) the initiation sample and (B) the step-up sample.

Notes: P<0.001 for the differences between cohorts. Percentages may not add up to 100% because of rounding. The mean daily dose exposure for each patient was calculated as the number of days’ supply divided by 730.

Abbreviations: BDP, beclomethasone dipropionate; FP, fluticasone propionate; ICS, inhaled corticosteroid.

A higher percentage of patients in the extrafine beclomethasone cohort had two or more lower respiratory tract infections requiring antibiotic therapy (P=0.020), while hospitalizations for COPD and lower respiratory conditions were infrequent in both cohorts (Table 2). A total of seven (2.1%) and four (1.2%) patients in extrafine beclomethasone and fluticasone cohorts had a recorded diagnosis of pneumonia (P=0.37); we considered the diagnosis confirmed for three (0.9%) patients in each cohort. There was no difference between cohorts in the adjusted odds of developing oral candidiasis, experienced by roughly one in ten patients (Table 2).

Step-up sample

The extrafine beclomethasone and fluticasone cohorts were similar at baseline, with mean age of 67 years and 57% male (Tables 1 and S3). A significant difference between cohorts in index date was small and not clinically meaningful (2003.3 versus 2002.7; P<0.001). The stepped-up ICS dose prescribed at the index date was significantly lower for extrafine beclomethasone than fluticasone (median [IQR] 400 [400-400] versus 1,000 [500-1,000] μg/d; P<0.001; Figure 1). Unadjusted and adjusted results for effectiveness measures were comparable for the two step-up cohorts during the 2 year outcome period (Tables 3 and 4). As for the initiation sample, fewer patients in both cohorts experienced ≥2 exacerbations/year relative to baseline (Figure 2). Adjusted odds of treatment stability and treatment change were similar in the two cohorts (Table 4 and Figure 3). Mean daily ICS dose exposure was significantly lower for extrafine beclomethasone (Table 4 and Figure 4).
Table 4

Unadjusted and adjusted results during the 2 year outcome period for the matched cohorts of the step-up sample

OutcomeExtrafine BDP(n=189)Fluticasone(n=189)Unadjusted odds, hazard, or rate ratio for extrafine BDP (95% CI)Adjusted odds, hazard, or rate ratio for extrafine BDP (95% CI)
Coprimary outcome measures
 COPD treatment success (0 exacerbations)58 (30.7)50 (26.5)OR 1.33 (0.79–2.26)aOR 1.45 (0.70–3.00)b
 Exacerbations over 2 yearsRR 0.98 (0.78–1.24)aRR 0.98 (0.79–1.23)c
  058 (30.7)50 (26.5)
  132 (16.9)36 (19.0)
  2–347 (24.9)44 (23.3)
  4–627 (14.3)40 (21.2)
  ≥725 (13.2)19 (10.1)
Secondary outcome measures
 Time to first exacerbation, median (95% CI), days313 (222–404)289 (192–386)HR 0.96 (0.71–1.31)aHR 0.97 (0.70–1.34)d
 Treatment stability (no Rx change or additional Rx)36 (19.0)25 (13.2)OR 1.65 (0.90–3.01)aOR 1.68 (0.78–3.59)e
 Treatment change102 (54.0)111 (58.7)OR 0.84 (0.57–1.24)aOR 0.75 (0.48–1.18)f
 Oral candidiasis, diagnosis/Rx17 (9.0)19 (10.1)RR 1.96 (0.83–4.62)P-valueaaRR 1.06 (0.54–2.06)g

Disaggregated outcome measures
 1 oral corticosteroid course24 (12.7)32 (16.9)0.71
 ≥2 oral corticosteroid courses51 (27.0)50 (26.5)
 1 lower respiratory infection + antibiotic Rx46 (24.3)53 (28.0)0.22
 ≥2 lower respiratory infections + antibiotic Rx46 (24.3)52 (27.5)
 ≥1 hospitalization for COPD or lower respiratory8 (4.2)3 (1.6)0.15
Daily ICS dose (μg/d), median (IQR)438 (274–619)534 (329–843)<0.001
Daily SABA dose (μg/d), median (IQR)1,041 (548–1,671)1,096 (493–1,808)0.29
Increase in ICS dose by ≥50%28 (14.8)21 (11.1)0.28
Additional new therapy100 (52.9)105 (55.6)0.62

Notes: Data are n (%) unless otherwise indicated. Treatment change was defined as the first change and could include an increase in ICS dose and/or additional therapy. Additional new therapy was new for those patients and could be at any time during the 2 outcome years; patients could have received ≥1 additional therapy.

Conditional logistic regression. Adjusted for baseline

adherence to ICS therapy, number of primary care consultations, and time from first coding of COPD at practice to index date

adherence to ICS therapy and no primary care consultations

number of primary care consultations

GERD diagnosis and/or therapy and adherence to ICS

GERD diagnosis and/or therapy and adherence to ICS

beta blockers, GERD diagnosis and/or therapy, adherence to ICS therapy, and oral candidiasis.

Abbreviations: aHR, adjusted hazard ratio; aOR, adjusted odds ratio; aRR, adjusted rate ratio; BDP, beclomethasone dipropionate; CI, confidence interval; COPD, chronic obstructive pulmonary disease; diagnosis/Rx, coded diagnosis or therapy for same; GERD, gastroesophageal reflux disease; ICS, inhaled corticosteroid; Rx, treatment; SABA, short-acting β2-agonist; IQR, interquartile range; OR, odds ratio; HR, hazard ratio; RR, rate ratio.

The percentages of patients with lower respiratory tract infection requiring antibiotic therapy were similar in the two cohorts (Table 4); pneumonia was confirmed for two (1.1%) patients in each cohort.

Additional analyses

Baseline patient characteristics were broadly similar for the matched and full unmatched patient cohorts (Table S4), and the unmatched results supported those for the matched cohorts (see Supplementary material). In post hoc sensitivity analyses, relative ICS doses and exacerbation rates among unmatched patients without a treatment change during the outcome period were similar to findings in the main analyses (Tables S5 and S6). There was no significant difference between the two treatment cohorts of initiation or step-up samples in all-cause mortality after the outcome period (Table S7).

Discussion

We observed that COPD exacerbation rates in both initiation and step-up samples during the 2 year outcome period were comparable between matched cohorts prescribed extrafine beclomethasone or larger-particle fluticasone in this retrospective analysis. For patients initiating ICS for COPD, those prescribed extrafine beclomethasone had over twice the odds of treatment stability (no COPD exacerbation or treatment change) and half the odds of a treatment change. Index date prescribed doses of extrafine beclomethasone were significantly lower than doses of fluticasone, and the ICS dose exposure during the outcome period was significantly lower for both the initiation and step-up extrafine beclomethasone cohorts. The percentages of patients in each cohort who experienced ≥2 exacerbations/year fell substantially during the outcome period. Relative to the baseline year, 11%–13% fewer patients in each initiation cohort, and 9%–16% fewer in each step-up cohort, experienced ≥2 exacerbations/year. This finding suggests that pharmacotherapy was effective, as the experience of frequent COPD exacerbations (≥2/year) is reportedly a relatively stable patient phenotype.24 These findings suggest, moreover, that increasing the dose of ICS can improve outcomes for some patients. Nonetheless, 25%–28% of patients in the extrafine beclomethasone cohorts and 18%–31% in fluticasone cohorts experienced ≥4 exacerbations during the 2 year outcome period. Although ICS are not recommended in COPD other than in fixed-dose combination with LABA, several studies have demonstrated some efficacy of ICS with regard to clinical outcomes,25 and practice surveys in developed countries indicate that prescribing of ICS outside of fixed-dose combinations is not infrequent in usual care.11–13 (Moreover, fluticasone is licensed in some countries, including the Netherlands, for COPD). In this study, from 40%–49% of patients in initiation cohorts and from 33%–35% in step-up cohorts remained on ICS monotherapy at the end of the 2 year outcome period, not an ideal situation according to guideline recommendations but a reality of clinical practice and perhaps a reflection of earlier COPD treatment guidelines. There is little other published work comparing ICS with different particle sizes for COPD. Two studies have compared combination ICS/LABA products.26,27 In a 12 week double-blind study of 18 patients with lung hyperinflation, the combination of extrafine beclomethasone/formoterol, but not larger-particle-size fluticasone/salmeterol, was effective in reducing air trapping and dyspnea.26 This concurs with our findings that the cohort initiating extrafine-particle ICS was less frequently prescribed a treatment change than the cohort initiating larger-particle-size ICS. In another study, clinical outcomes for 232 patients prescribed beclomethasone/formoterol were similar to those for 238 patients prescribed larger-particle budesonide/formoterol with regard to COPD questionnaires and overall low exacerbation rates, while FVC improved more in those prescribed beclomethasone/formoterol.27 The FVC results observed, and those of the prior study,26 could perhaps be explained by better distribution of extrafine particles to the small peripheral airways, an important site of inflammation in COPD.4,15,16 Further investigations and mechanistic studies are needed to explore the comparative effects of differing ICS particle sizes for treating COPD, including prospective pragmatic trials of ICS administered concomitantly with long-acting bronchodilators. The identification of surrogate markers of small airway inflammation evaluable in both smokers and ex-smokers would aid this process. Recent work suggests that alveolar nitric oxide (NO) is not a useful marker for monitoring response to COPD therapy.28 Our composite exacerbation definition included lower respiratory tract antibiotic therapy (or an oral corticosteroid course or unscheduled hospitalization or ED visit). At least one antibiotic prescription for lower respiratory tract infection was prescribed during the 2 year follow-up for 47% of patients initiating extrafine beclomethasone and 40% initiating fluticasone, a statistically significant difference, which may need further study to assess whether this is a real observation. Of note, we found the opposite direction of effect in the step-up cohorts (although the difference was not statistically significant), as 49% and 56% of extrafine beclomethasone and fluticasone patients, respectively, received one or more antibiotic prescriptions. The fact of the results being in opposite directions could potentially be explained by the distribution of outliers during the baseline year, as patients with a higher number of baseline antibiotic prescriptions may be more likely to need antibiotic therapy during the outcome period: namely, in the initiation sample during baseline, 13 patients in the extrafine beclomethasone cohort versus five in the fluticasone cohort received from 4–8 courses of antibiotics; and in the step-up sample during baseline, three versus ten, respectively, received from 4–7 courses of antibiotics. In addition to effectiveness of ICS it is important to assess side effects.1 Confirmed pneumonia was infrequent and comparable with both ICS treatments, recorded for three patients in each initiation cohort and one in each step-up cohort. However, the incidence of pneumonia may have been underestimated in this study, as some cases of pneumonia may have been coded as lower respiratory tract infection and treated in the home setting. Moreover, it is possible that some hospitalizations for pneumonia were not captured in the database. The post-study all-cause mortality rates did not differ between cohorts. Observational research provides important insights into the realities of real-life practice. For instance, although extrafine beclomethasone is not approved for use in COPD, this analysis shows that it is widely prescribed for patients with COPD in general practice. The effectiveness and safety information provided in this analysis for patients with COPD prescribed extrafine beclomethasone is a novel and valuable addition to the literature. Observational research also enables the study of heterogeneous patient populations in real-life clinical care conditions, providing relevant information to complement that from tightly controlled and selective randomized clinical trials.29,30 This matched cohort study included a broad range of patients who were prescribed COPD therapy under usual conditions of care in UK general practice. The fact that baseline patient characteristics were broadly similar for matched and unmatched patient groups suggests that studied patients were representative of the general UK COPD population. The inclusive patient population enhances external validity of findings and their generalizability to real-life practice. In addition, we followed patients for 2 years, allowing us to describe the course of therapy over this time period. A high percentage of patients in this study, ≥55% in each treatment cohort, also had a diagnosis of asthma recorded in the database (after the age of 40, per inclusion criteria). This may reflect the fact that a subgroup of patients with asthma develops persistent airway obstruction over time, particularly when they smoke.31 We believe that the COPD diagnosis was valid for most patients under study for several reasons: 1) all patients had a recorded post-bronchodilator FEV1/FVC ratio of <0.7; 2) all were smokers or ex-smokers; 3) the mean age was 67 years, and the cohorts included a preponderance of men (60%); 4) among those with an FEV1 reading at baseline (87% of the full population studied), the mean %predicted FEV1 in the four cohorts ranged from 52% to 55% (depending on cohort); and from 60% to 69% of patients in each cohort had a %predicted FEV1 of <60%; 5) moreover, of the patients with an asthma codiagnosis, most also had substantial FEV1 impairment (mean FEV1 %predicted, 53%; data not shown); 6) finally, the COPD diagnosis was recorded at or close to the time of the asthma diagnosis for most patients, and, importantly, the COPD diagnosis was confirmed (via FEV1/FVC ratio <0.7) for most patients after the asthma diagnosis was recorded (Figure S3). This suggests that the asthma codiagnosis was often an initial misdiagnosis that was later superseded by a diagnosis of COPD. Retrospective studies such as this one are limited by the available data. All included patients had a database-recorded post-bronchodilator FEV1/FVC <0.7; however, we were unable to track lung function during the outcome period because spirometry is not performed routinely in primary care. Moreover, not all potential matching criteria were available for all patients at baseline, including the FEV1 value (hence GOLD grade) and scores for the modified Medical Research Council or COPD Assessment Test, which would have enabled patient categorization according to recent GOLD guidelines.1 Nonetheless, patients appeared to be well-matched for physical characteristics and disease severity, and the analyses incorporated adjustments for residual confounding (although we cannot rule out unidentified confounding factors). Finally, the percentages of patients in each cohort who quit smoking during the outcome period would have been of interest, since the effects of ICS can be less in smokers with COPD.

Conclusion

This study has enabled us to describe the use of ICS for patients with COPD in UK primary care. We observed that ICS are prescribed, both as monotherapy and in combination with long-acting bronchodilators, for treating COPD and can result in improved exacerbation rates as in our COPD patients with predominantly GOLD grade 2 and 3 severity of airflow limitation. Our observations that small-particle ICS at significantly lower doses had the same effects as larger-particle ICS at higher doses and that small-particle ICS use was associated with greater odds of treatment stability and lower odds of treatment change during the 2 year’ follow-up could be explained by greater lung deposition, especially to the small airways. Future pragmatic trials are needed to prospectively evaluate the effectiveness of ICS of differing particle sizes in COPD, administered concomitantly with long-acting bronchodilators. For the unmatched patients: prescribed inhaled corticosteroids doses were significantly lower for extrafine beclomethasone in both ○ initiation sample: median interquartile range [IQR], 200 [200-400] versus fluticasone 500 [500-1000] μg/d; P<0.001, and ○ step-up sample: median [IQR], 400 [400-400] versus fluticasone 1,000 [500-1,000] μg/d; P<0.001. For the unmatched patients: primary outcome measures showed no significant difference between cohorts in COPD exacerbation rate during outcome, with adjusted rate ratio ○ for initiation sample: 1.04 (95% confidence interval [CI], 0.89–1.22) for extrafine beclomethasone relative to fluticasone ○ step-up sample: 0.94 (95% CI, 0.80–1.10) for extrafine beclomethasone. For the unmatched patients: there was no significant difference between cohorts in odds of COPD treatment success during outcome, with adjusted odds ratio ○ for initiation sample: 0.99 (95% CI, 0.77–1.29) for extrafine beclomethasone relative to fluticasone ○ step-up sample: odds ratio 1.20 (95% CI, 0.83–1.72) for extrafine beclomethasone. Patient selection and matching for the initiation sample. Note: Patients in the two treatment cohorts were matched on clinically and demographically significant characteristics. Abbreviations: BAI, breath-actuated inhaler; COPD, chronic obstructive pulmonary disease; DPI, dry powder inhaler; FDC, fixed-dose combination; FEV1, forced expiratory volume in 1 second; FVC, forced vital capacity; GPRD, General Practice Research Database; ICS, inhaled corticosteroid; LABA, long-acting β2-agonist; LAMA, long-acting muscarinic antagonist; OPCRD, Optimum Patient Care Research Database; Rx, therapy; SABA, short-acting β2-agonist; SAMA, short-acting muscarinic antagonist. Patient selection and matching for the step-up sample. Abbreviations: BAI, breath-actuated inhaler; COPD, chronic obstructive pulmonary disease; DPI, dry powder inhaler; FDC, fixed-dose combination; FEV1, forced expiratory volume in 1 second; FVC, forced vital capacity; GPRD, General Practice Research Database; ICS, inhaled corticosteroid; LABA, long-acting β2-agonist; LAMA, long-acting muscarinic antagonist; OPCRD, Optimum Patient Care Research Database; Rx, therapy; SABA, short-acting β2-agonist; SAMA, short-acting muscarinic antagonist. Time plots of the COPD diagnosis showing (A) the time of the COPD diagnosis relative to time of first asthma diagnosis for the full unmatched population who also had a recorded asthma diagnosis, and (B) the time of the COPD confirmation (by FEV1/FVC ratio <0.7) relative to time of the asthma diagnosis for these patients. Abbreviations: COPD, chronic obstructive pulmonary disease; dx, diagnosis; SD, standard deviation; FEV1, forced expiratory volume in 1 second; FVC, forced vital capacity. Chronic respiratory diseases and database codes that were cause for study exclusion Abbreviations: NHS, National Health Service; NOS, not otherwise specified; OS, otherwise stated. List of potential confounding variables considered for this study Abbreviations: COPD, chronic obstructive pulmonary disease; ICS, inhaled corticosteroid; LABA, long-acting β2-agonist; LAMA, long-acting muscarinic antagonist; NSAID, nonsteroidal anti-inflammatory drug; SABA, short-acting β2-agonist; SAMA, short-acting muscarinic antagonist. Additional baseline patient characteristics by matched treatment cohort Notes: Matched cohorts were compared using conditional logistic regression recorded BMI data were available for 331 (99%) and 328 (98%) patients in extrafine beclomethasone and fluticasone initiation cohorts, respectively, and for 185 (98%) and 184 (97%) patients in extrafine beclomethasone and fluticasone step-up cohorts, respectively. Abbreviations: BDP, beclomethasone dipropionate; BMI, body mass index; COPD, chronic obstructive pulmonary disease; IQR, interquartile range; n/a, not applicable; NSAID, nonsteroidal anti-inflammatory drug; SABA, short-acting β2-agonist; SAMA, short-acting muscarinic antagonist; yr, years; mo, months. Baseline characteristics of unmatched cohorts Notes: Matching variable (age matching was ±5 years and index prescription date ±1 year for the initiation population and ±2 years for the step-up population) the doses of ICS were standardized to equivalence with extrafine beclomethasone and fluticasone; thus, baseline doses of large-particle beclomethasone and budesonide were halved. The daily dose was calculated as the number of days’ supply divided by number of prescription days. Abbreviations: BDP, beclomethasone dipropionate; BMI, body mass index; COPD, chronic obstructive pulmonary disease; diagnosis/Rx, coded diagnosis or therapy for same; FEV1, forced expiratory volume in 1 second; GERD, gastroesophageal reflux disease; GOLD, Global initiative for chronic Obstructive Lung Disease; ICS, inhaled corticosteroid; IQR, interquartile range; n/a, not applicable; LABA, long-acting β2-agonist; LAMA, long-acting muscarinic antagonist; NSAID, nonsteroidal anti-inflammatory drug; SABA, short-acting β2-agonist; SAMA, short-acting muscarinic antagonist; SD, standard deviation. Results during the 2 year outcome period for the initiation sample, unmatched cohorts, no treatment change Notes: Data are n (%) unless otherwise indicated. Conditional logistic regression. Adjusted for baseline adjusted for: age, antibiotics use (with a lower respiratory read code within a ±5 day window) (categorized), prescriptions for theophylline (Yes/No) and time between first coded diagnosis at practice and the index date (categorized) adjusted for: age, rhinitis diagnosis (Yes/No), antibiotics use (with a lower respiratory read code within a ±5 day window) (categorized), acute use of oral steroids (categorized), number of lower respiratory-related consultations (categorized), beta blockers (Yes/No), prescriptions for theophylline (Yes/No) and Year of first coded diagnosis at practice (categorized) adjusted for: age, antibiotics use (with a lower respiratory read code within a ±5 day window) (categorized), number of COPD consultations (categorized), prescriptions for theophylline (Yes/No) and inpatient admissions for COPD (Yes/No). Abbreviations: HR, hazard ratio; OR, odds ratio; RR, rate ratio; BDP, beclomethasone dipropionate; CI, confidence interval; COPD, chronic obstructive pulmonary disease; ICS, inhaled corticosteroid; IQR, interquartile range; LABA, long-acting β2-agonist; Rx, treatment; SABA, short-acting β2-agonist. Unadjusted and adjusted results during the 2 year outcome period for the step-up sample, unmatched cohorts, no treatment change Notes: Data are n (%) unless otherwise indicated. Conditional logistic regression. Adjusted for baseline adjusted for: asthma diagnosis (Yes/No), GERD diagnosis and/or therapy (Yes/No), cardiac disease diagnosis and/or therapy (Yes/No), acute use of oral steroids (categorized), number of primary care consultations (categorized), prior LABA use (Yes/No) and time between first coded diagnosis at practice and the index date (categorized) adjusted for: antibiotics use (with a lower respiratory read code within a ±5 day window) (categorized), acute use of oral steroids (categorized), number of COPD consultations (categorized), average daily ICS dose (categorized), prescriptions for paracetamol (Yes/No), prior LABA use (Yes/No) and time between first coded diagnosis at practice and IPD (categorized) adjusted for: GERD diagnosis and/or therapy (Yes/No), antibiotics use (with a lower respiratory read code within a ±5 day window) (categorized 0–1/2+ to meet proportional hazards requirement), acute use of oral steroids (categorized 0–1/2+ to meet proportional hazards requirement), prior LABA use (Yes/No) and number of primary care consultations (categorized). Abbreviations: HR, hazard ratio; OR, odds ratio; RR, rate ratio; BDP, beclomethasone dipropionate; CI, confidence interval; COPD, chronic obstructive pulmonary disease; GERD, gastroesophageal reflux disease; ICS, inhaled corticosteroid; IQR, interquartile range; LABA, long-acting β2-agonist; Rx, treatment; SABA, short-acting β2-agonist. Post-study mortality rates Notes: The study was not designed to evaluate mortality rates during treatment, as patients had to be alive throughout the 2 year outcome period to be eligible for the study. Follow-up time from index date until censored or the end of the study period (end of 2010). Cox proportional hazards model adjusted for Charlson comorbidity index score and smoking status adjusted for age and cardiac disease diagnosis or therapy. Abbreviations: BDP, beclomethasone dipropionate; CI, confidence interval; HR, hazard ratio; SD, standard deviation.
Table S1

Chronic respiratory diseases and database codes that were cause for study exclusion

NHS read codeNHS read term
AD5..00Sarcoidosis
H4...00Lung disease due to external agents
H4...11Pneumoconiosis
H4...12Occupational lung disease
H40..00Coal workers’ pneumoconiosis
H41..00Asbestosis
H410.00Pleural plaque disease/asbestosis
H41z.00Asbestosis NOS
H42..00Silica/silicate pneumoconiosis
H420.00Talc pneumoconiosis
H421.00Simple silicosis
H422.00Complicated silicosis
H423.00Massive silicotic fibrosis
H42z.00Silica pneumoconiosis NOS
H43..00Pneumoconiosis-other inorganic dust
H431.00Bauxite fibrosis of lung
H432.00Berylliosis
H433.00Graphite fibrosis of lung
H434.00Siderosis
H435.00Stannosis
H43z.00Pneumoconiosis-inorganic dust NOS
H44..00Pneumopathy-other dust inhalation
H440.00Byssinosis
H441.00Cannabinosis
H44z.00Pneumopathy-dust inhalation NOS
H45..00Pneumoconiosis NOS
H450.00Pneumoconiosis associated with tuberculosis
H46..00Respiratory disease – chemical fumes
H460.00Chemical bronchitis/pneumonitis
H460z00Chemical bronchitis/pneumonitis NOS
H464.00Chronic chemical respiratory conditition
H464100Chemical obliterative bronchiolitis
H464200Chemical pulmonary fibrosis
H464z00Chronic chemical respiratory condition NOS
H46z.00Chemical respiratory conditions NOS
H46zz00Chemical respiratory conditions NOS
H48..00Progressive massive fibrosis
H4y..00External agent lung disease OS
H4y1.00Chronic pulmonary radiation disease
H4y1000Radiation pulmonary fibrosis
H4y1z00Chronic pulmonary radiation disease NOS
H4y2.00Drug-induced interstitial lung disorder
H4y2100Chronic drug-induced interstitial lung disorder
H4yy.00Other external agent respiratory condition
H4yz.00External agent respiratory condition NOS
H4z..00External agent lung disease NOS
H57y200Pulmonary sarcoidosis

Abbreviations: NHS, National Health Service; NOS, not otherwise specified; OS, otherwise stated.

Table S2

List of potential confounding variables considered for this study

• The index date
Potential confounders examined at (or closest to) the relevant index date
• Age
• Sex
• Height
• Weight
• Body mass index
• Lung function, in terms of spirometry before index date
• Smoking status
Potential confounders examined regardless of when they occurred relative to the index date
• Date of first COPD diagnosis (where known)
• Other respiratory or other confounding diagnoses, including rhinitis, gastroesophageal reflux disease, and cardiac disease
Potential confounders examined in the year before the index date
• Other important unrelated comorbidities expressed using the Charlson Comorbidity Index, calculated over the 1 year baseline period
• Number of general practice consultations for COPD or other respiratory illness
• Number of hospital outpatient attendances where COPD is recorded as the reason for referral
• Number of hospitalizations or emergency department attendance for COPD or possibly respiratory-related (a non-specific hospitalization code and a COPD/respiratory code within a 1 week window)
• Number of acute courses of oral corticosteroids
• Number of prescriptions for any antibiotic where the reason for the prescription is lower respiratory tract infection
• Other medications that might interfere with COPD control, including beta-blockers, NSAIDs, acetaminophen, and antidepressants
• Prior treatment classified as
 ○ No drug therapy
 ○ SABA only
 ○ SAMA ± SABA
 ○ LABA ± SAMA ± SABA
 ○ LAMA ± SAMA ± SABA
 ○ LAMA ± LABA ± SAMA ± SABA
• Average ICS daily dose during baseline year

Abbreviations: COPD, chronic obstructive pulmonary disease; ICS, inhaled corticosteroid; LABA, long-acting β2-agonist; LAMA, long-acting muscarinic antagonist; NSAID, nonsteroidal anti-inflammatory drug; SABA, short-acting β2-agonist; SAMA, short-acting muscarinic antagonist.

Table S3

Additional baseline patient characteristics by matched treatment cohort

CharacteristicInitiation sample
Step-up sample
Extrafine BDP(n=334)Fluticasone(n=334)P-valueaExtrafine BDP(n=189)Fluticasone(n=189)P-valuea
Timing of COPD diagnosis code in database, n (%)
 <3 yr before index date52 (15.6)63 (18.9)0.1350 (26.5)57 (30.2)0.17
 6 mo to 3 yr before index date82 (24.6)81 (24.3)32 (16.9)43 (22.8)
 At or <6 mo before index date102 (30.5)117 (35.0)33 (17.5)28 (14.8)
 <3 yr after index date66 (19.8)40 (12.0)41 (21.7)31 (16.4)
 ≥3 yr after index date32 (9.6)33 (9.9)33 (17.5)30 (15.9)
BMI category, n (%)b
 Underweight (BMI <18.5 kg/m2)14 (4.2)15 (4.6)0.965 (2.7)6 (3.3)0.84
 Normal (BMI 18.5–<24.5 kg/m2)132 (39.9)125 (38.1)75 (40.5)78 (42.4)
 Overweight (BMI 24.5–<30 kg/m2)115 (34.7)121 (36.9)67 (36.2)57 (31.0)
 Obese (BMI ≥30 kg/m2)70 (21.1)67 (20.4)38 (20.5)43 (23.4)
≥1 prescription in baseline year or at index date, n (%)
 Beta blocker37 (11.1)35 (10.5)0.8019 (10.1)9 (4.8)0.056
 NSAID134 (40.1)113 (33.8)0.08281 (42.9)70 (37.0)0.26
 Paracetamol114 (34.1)123 (36.8)0.4775 (39.7)72 (38.1)0.72
 Antidepressant47 (14.1)65 (19.5)0.04935 (18.5)27 (14.3)0.11
Daily SABA dose, median (IQR)219 (110–548)219 (110–548)0.77384 (219–658)438 (219–767)0.22
Daily SAMA dose, median (IQR)0 (0–55)11 (0–55)0.160 (0–44)0 (0–55)0.40
Pneumonia diagnosis, confirmed, n (%)0 (0)3 (0.9)n/a1 (0.5)0 (0)n/a

Notes:

Matched cohorts were compared using conditional logistic regression

recorded BMI data were available for 331 (99%) and 328 (98%) patients in extrafine beclomethasone and fluticasone initiation cohorts, respectively, and for 185 (98%) and 184 (97%) patients in extrafine beclomethasone and fluticasone step-up cohorts, respectively.

Abbreviations: BDP, beclomethasone dipropionate; BMI, body mass index; COPD, chronic obstructive pulmonary disease; IQR, interquartile range; n/a, not applicable; NSAID, nonsteroidal anti-inflammatory drug; SABA, short-acting β2-agonist; SAMA, short-acting muscarinic antagonist; yr, years; mo, months.

Table S4

Baseline characteristics of unmatched cohorts

CharacteristicInitiation – unmatched
Step-up – unmatched
Extrafine BDP(n=938)Fluticasone(n=443)Extrafine BDP(n=372)Fluticasone(n=606)
Male sex, n (%)a535 (57.0)259 (58.5)206 (55.4)325 (53.6)
Age at index date, mean (SD)a67.5 (9.5)65.6 (8.8)67.8 (10.1)65.2 (9.5)
BMI in kg/m2, mean (SD)26.1 (5.2)26.2 (4.8)26.6 (5.2)26.3 (5.3)
Charlson comorbidity index score, n (%)
 0577 (61.5)268 (60.5)236 (63.4)360 (59.4)
 1197 (21)84 (19)58 (15.6)121 (20.0)
 296 (10.2)58 (13.1)50 (13.4)70 (11.6)
 ≥368 (7.2)33 (7.4)28 (7.5)55 (9.1)
Current smoker, n (%)422 (46.1)209 (48.2)141 (39.1)267 (45.9)
Ex-smoker, n (%)494 (53.9)225 (51.8)220 (60.9)315 (54.1)
Index prescription date, mean (SD)a2004.4 (2.4)2002.3 (2.6)2004.2 (2.3)2001.3 (2.8)
Recorded comorbidity, n (%)
 Asthma diagnosis479 (51.1)261 (58.9)264 (71.0)477 (78.7)
 Rhinitis diagnosis116 (12.4)66 (14.9)47 (12.6)98 (16.2)
 GERD diagnosis145 (15.5)70 (15.8)47 (12.6)121 (20.0)
 Cardiac disease diagnosis186 (19.8)58 (13.1)74 (19.9)111 (18.3)
Exacerbations, n (%)b
 0 (COPD treatment success)345 (36.8)172 (38.8)145 (39.0)215 (35.5)
 1251 (26.8)113 (25.5)93 (25.0)137 (22.6)
 ≥2342 (36.5)158 (35.7)134 (36.0)254 (41.9)
Recorded %predicted FEV1, n (%)835 (89.0)374 (84.4)341 (91.7)517 (85.3)
 %predicted FEV1, mean (SD)55.3 (18.5)52.0 (18.9)56.3 (19.9)49.5 (18.7)
GOLD grade (2008 criteria), n (%)
 GOLD 178 (9.1)33 (8.5)44 (12.7)35 (6.7)
 GOLD 2431 (50.1)161 (41.6)168 (48.4)198 (37.6)
 GOLD 3280 (32.5)139 (35.9)105 (30.3)209 (39.7)
 GOLD 472 (8.4)54 (14.0)30 (8.6)84 (16.0)
Baseline therapy, n (%)a
 SABA56 (6.0)30 (6.8)148 (39.8)198 (32.7)
 SAMA308 (32.8)155 (35.0)17 (4.6)12 (2.0)
 SAMA + SABA72 (7.7)76 (17.2)66 (17.7)126 (20.8)
 LABA ± SAMA ± SABA47 (5.0)14 (3.2)86 (23.1)223 (36.8)
 LAMA ± SAMA ± SABA11 (1.2)4 (0.9)21 (5.6)7 (1.2)
 LAMA + LABA ± SAMA ± SABA15 (1.6)11 (2.5)23 (6.2)19 (3.1)
 Other94 (10.0)84 (19.0)11 (3.0)21 (3.5)
LABA during baseline year, n (%)6 (3–10)5 (3–11)110 (29.6)247 (40.8)
COPD prescriptions, median (IQR)56 (6.0)30 (6.8)9 (5–13)10 (6–14)
Mean daily ICS dose, n (%)a,bn/an/a
 1–50 μg/dn/an/a29 (7.8)26 (4.3)
 51–100 μg/dn/an/a82 (22.0)89 (14.7)
 101–200 μg/dn/an/a115 (30.9)170 (28.1)
 201–400 μg/dn/an/a106 (28.5)156 (25.7)
 >400 μg/dn/an/a40 (10.8)165 (27.2)
Oral candidiasis, diagnosis/Rx, n (%)16 (1.7)12 (2.7)18 (4.8)38 (6.3)
≥1 Inpatient admission for COPD/lower respiratory condition, n (%)13 (1.4)9 (2.0)4 (1.1)11 (1.8)
Antibiotics: 1 prescription, n (%)206 (22.0)103 (23.3)81 (21.8)125 (20.6)
 ≥2 prescriptions, n (%)155 (16.5)49 (11.1)51 (13.7)99 (16.3)
Daily SABA dose, median (IQR)219 (110–548)219 (110–548)438 (164–712)493 (219–877)
Daily SAMA dose, median (IQR)0 (0–44)11 (0–55)0 (0–44)0 (0–66)
Pneumonia diagnosis, confirmed, n (%)5 (0.5)3 (0.7)1 (0.3)3 (0.5)

Notes:

Matching variable (age matching was ±5 years and index prescription date ±1 year for the initiation population and ±2 years for the step-up population)

the doses of ICS were standardized to equivalence with extrafine beclomethasone and fluticasone; thus, baseline doses of large-particle beclomethasone and budesonide were halved. The daily dose was calculated as the number of days’ supply divided by number of prescription days.

Abbreviations: BDP, beclomethasone dipropionate; BMI, body mass index; COPD, chronic obstructive pulmonary disease; diagnosis/Rx, coded diagnosis or therapy for same; FEV1, forced expiratory volume in 1 second; GERD, gastroesophageal reflux disease; GOLD, Global initiative for chronic Obstructive Lung Disease; ICS, inhaled corticosteroid; IQR, interquartile range; n/a, not applicable; LABA, long-acting β2-agonist; LAMA, long-acting muscarinic antagonist; NSAID, nonsteroidal anti-inflammatory drug; SABA, short-acting β2-agonist; SAMA, short-acting muscarinic antagonist; SD, standard deviation.

Table S5

Results during the 2 year outcome period for the initiation sample, unmatched cohorts, no treatment change

OutcomeExtrafine BDP(n=413)Fluticasone(n=180)Adjusted odds, hazard, or rate ratio for extrafine BDP (95% CI)
Coprimary outcome measures
 COPD treatment success (0 exacerbations)170 (41.2)79 (43.9)OR 0.93 (0.64–1.37)b
 Exacerbations over 2 yearsRR 0.89 (0.66–1.20)c
  0170 (41.2)79 (43.9)
  198 (23.7)40 (22.2)
  2–383 (20.1)36 (20.0)
  4–646 (11.1)8 (4.4)
  ≥716 (3.9)17 (9.4)
Secondary outcome measures
 Time to first exacerbation, median (95% CI), daysHR 1.05 (0.82–1.34)dP-valuea

Disaggregated outcome measures
 1 oral corticosteroid course53 (12.8)22 (12.2)0.75
 ≥2 oral corticosteroid courses42 (10.2)15 (8.3)
 1 lower respiratory infection + antibiotic Rx86 (20.8)35 (19.4)0.68
 ≥2 lower respiratory infections + antibiotic Rx76 (18.4)29 (16.1)
 ≥1 hospitalization for COPD or lower respiratory3 (0.7)1 (0.6)0.82
Daily ICS dose (μg/d), median (IQR)219 (110–356)390 (138–740)<0.001
Daily SABA dose (μg/d), median (IQR)712 (329–1,315)712 (274–1,452)0.70
Increase in ICS dose by ≥50%43 (10.4)18 (10.0)0.88
Continuing LABA from baseline53 (12.8)46 (25.6)
Confirmed pneumonia diagnosis1 (0.2)1 (0.6)Not applicable

Notes: Data are n (%) unless otherwise indicated.

Conditional logistic regression. Adjusted for baseline

adjusted for: age, antibiotics use (with a lower respiratory read code within a ±5 day window) (categorized), prescriptions for theophylline (Yes/No) and time between first coded diagnosis at practice and the index date (categorized)

adjusted for: age, rhinitis diagnosis (Yes/No), antibiotics use (with a lower respiratory read code within a ±5 day window) (categorized), acute use of oral steroids (categorized), number of lower respiratory-related consultations (categorized), beta blockers (Yes/No), prescriptions for theophylline (Yes/No) and Year of first coded diagnosis at practice (categorized)

adjusted for: age, antibiotics use (with a lower respiratory read code within a ±5 day window) (categorized), number of COPD consultations (categorized), prescriptions for theophylline (Yes/No) and inpatient admissions for COPD (Yes/No).

Abbreviations: HR, hazard ratio; OR, odds ratio; RR, rate ratio; BDP, beclomethasone dipropionate; CI, confidence interval; COPD, chronic obstructive pulmonary disease; ICS, inhaled corticosteroid; IQR, interquartile range; LABA, long-acting β2-agonist; Rx, treatment; SABA, short-acting β2-agonist.

Table S6

Unadjusted and adjusted results during the 2 year outcome period for the step-up sample, unmatched cohorts, no treatment change

OutcomeExtrafine BDP(n=178)Fluticasone(n=240)Adjusted odds, hazard, or rate ratio for extrafine BDP (95% CI)
Coprimary outcome measures
 COPD treatment success (0 exacerbations)65 (36.5)86 (35.8)OR 0.80 (0.50–1.29)b
 Exacerbations over 2 yearsRR 0.97 (0.74–1.26)c
  065 (36.5)86 (35.8)
  143 (24.2)37 (15.4)
  2–339 (21.9)55 (22.9)
  4–619 (10.7)37 (15.4)
  ≥712 (6.7)25 (10.4)
Secondary outcome measures
 Time to first exacerbation, median (95% CI), daysHR 1.10 (0.85–1.42)dP-valuea

Disaggregated outcome measures
 1 oral corticosteroid course27 (15.2)37 (15.4)0.005
 ≥2 oral corticosteroid courses26 (14.6)66 (27.5)
 1 lower respiratory infection + antibiotic Rx48 (27.0)46 (19.2)0.091
 ≥2 lower respiratory infections + antibiotic Rx29 (16.3)54 (22.5)
 ≥1 hospitalization for COPD or lower respiratory7 (3.9)3 (1.3)0.076
Daily ICS dose (μg/d), median (IQR)411 (219–575)740 (432–1,027)<0.001
Daily SABA dose (μg/d), median (IQR)822 (329–1,315)1,096 (438–1,781)0.002
Increase in ICS dose by ≥50%4 (2.2)12 (5.0)0.15
Continuing LABA from baseline61 (34.3)121 (50.4)0.001
Confirmed pneumonia diagnosis2 (1.1)2 (0.8)0.76

Notes: Data are n (%) unless otherwise indicated.

Conditional logistic regression. Adjusted for baseline

adjusted for: asthma diagnosis (Yes/No), GERD diagnosis and/or therapy (Yes/No), cardiac disease diagnosis and/or therapy (Yes/No), acute use of oral steroids (categorized), number of primary care consultations (categorized), prior LABA use (Yes/No) and time between first coded diagnosis at practice and the index date (categorized)

adjusted for: antibiotics use (with a lower respiratory read code within a ±5 day window) (categorized), acute use of oral steroids (categorized), number of COPD consultations (categorized), average daily ICS dose (categorized), prescriptions for paracetamol (Yes/No), prior LABA use (Yes/No) and time between first coded diagnosis at practice and IPD (categorized)

adjusted for: GERD diagnosis and/or therapy (Yes/No), antibiotics use (with a lower respiratory read code within a ±5 day window) (categorized 0–1/2+ to meet proportional hazards requirement), acute use of oral steroids (categorized 0–1/2+ to meet proportional hazards requirement), prior LABA use (Yes/No) and number of primary care consultations (categorized).

Abbreviations: HR, hazard ratio; OR, odds ratio; RR, rate ratio; BDP, beclomethasone dipropionate; CI, confidence interval; COPD, chronic obstructive pulmonary disease; GERD, gastroesophageal reflux disease; ICS, inhaled corticosteroid; IQR, interquartile range; LABA, long-acting β2-agonist; Rx, treatment; SABA, short-acting β2-agonist.

Table S7

Post-study mortality rates

Initiation sample
Step-up sample
Extrafine BDP(n=334)Fluticasone(n=334)Extrafine BDP(n=189)Fluticasone(n=189)
Follow-up time in yearsa mean (SD)6.6 (2.5)7.0 (2.6)6.4 (2.3)7.2 (2.3)
Number of deaths, n (%)58 (17.4)64 (19.2)26 (13.8)39 (20.6)
All-cause mortality, adjusted HR (95% CI)1.07 (0.68–1.70)b1.001.23 (0.61–2.47)c1.00

Notes: The study was not designed to evaluate mortality rates during treatment, as patients had to be alive throughout the 2 year outcome period to be eligible for the study.

Follow-up time from index date until censored or the end of the study period (end of 2010). Cox proportional hazards model

adjusted for Charlson comorbidity index score and smoking status

adjusted for age and cardiac disease diagnosis or therapy.

Abbreviations: BDP, beclomethasone dipropionate; CI, confidence interval; HR, hazard ratio; SD, standard deviation.

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