| Literature DB >> 30691429 |
Claire A Cox1,2, Ilse M Boudewijn3,4, Sebastiaan J Vroegop5, Siebrig Schokker5, Anne J Lexmond6, Henderik W Frijlink6, Paul Hagedoorn6, Judith M Vonk4,7, Martijn P Farenhorst3, Nick H T Ten Hacken3,4, Huib A M Kerstjens3,4, Maarten van den Berge3,4.
Abstract
BACKGROUND: Bronchial provocation is often used to confirm asthma. Dyspnea sensation, however, associates poorly with the evoked drop in FEV1. Provocation tests only use the large airways parameter FEV1, although dyspnea is associated with both large- and small airways dysfunction. Aim of this study was to explore if adenosine 5'-monophosphate (AMP) and adenosine evoke an equal dyspnea sensation and if dyspnea associates better with large or small airways dysfunction.Entities:
Keywords: AMP; Borg score; Dry powder adenosine; Dyspnea; Provocation
Mesh:
Substances:
Year: 2019 PMID: 30691429 PMCID: PMC6348600 DOI: 10.1186/s12890-019-0783-0
Source DB: PubMed Journal: BMC Pulm Med ISSN: 1471-2466 Impact factor: 3.317
Baseline characteristics
| Gender (M/F) | 24/35 |
| Age (years) | 47.0 (37.0–55.0) |
| BMI (kg/m2) | 26.8 (23.1–31.4) |
| Smoking status (Current/Ex) | 30/29 |
| Number of packyears (years) | 16.8 (11.0–26.0) |
| Adenosine provocation (pos/neg) | 45/14 |
| Positive Adenosine (mg) | 3.11 (0.87–6.38) |
| AMP provocation (pos/neg) | 40/19 |
| Positive AMP (mg/mL) | 14.67 (4.7–44.88) |
| Borg score (points) | 0.0 (0.0–2.0) |
| FEV1 (L) | 2.93 (2.36–3.44) |
| FEV1 percentage of predicted (%) | 85 (74–96) |
| FVC (L) | 4.14 (3.52–4.94) |
| FVC percentage of predicted (%) | 105 (94–116) |
| FEV1/FVC (%) | 70 (62–77) |
| FEF25 | 4.86 (3.46–6.42) |
| FEF25 percentage of predicted (%) | 72 (48–96) |
| FEF50 | 2.35 (1.70–3.27) |
| FEF50 percentage of predicted (%) | 51 (36–65) |
| FEF75 | 0.67 (0.46–1.14) |
| FEF75 percentage of predicted (%) | 36 (25–56) |
| FEF25–75 | 1.79 (1.30–2.74) |
| FEF25–75 percentage of predicted (%) | 49 (35–65) |
| R5 (kPa sL− 1) | 0.53 (0.42–0.67) |
| R20 (kPa sL−1) | 0.42 (0.35–0.47) |
| R5-R20 (kPa sL− 1) | 0.08 (0.04–0.22) |
| AX (kPa L− 1) | 0.64 (0.24–1.82) |
| X5 (kPa sL− 1) | −0.13 (− 0.22- -0.09) |
| Fres (s− 1) | 16.78 (12.33–21.83) |
| LCI2.5%a | 9.27 (8.60–11.28) |
| LCI5%a | 6.22 (5.76–7.37) |
| Sconda | 0.04 (0.02–0.06) |
| Sacina | 0.14 (0.10–0.19) |
Data is presented as count or median (inter quartile range (IQR)). pos positive response, ≤ 20 mg for adenosine and ≤ 160 mg/ml for AMP; neg negative response, > 20 mg for adenosine and > 160 mg/ml for AMP, FEV forced expiratory volume in the first second, FVC forced vital capacity, FEF forced expiratory flow at 25% of FVC, FEF forced expiratory flow at 50% of FVC, FEF forced expiratory flow at 75% of FVC, FEF forced expiratory flow at 25 to 75% of FVC, R resistance to 5 Hz, R resistance to 20 Hz, R-R difference in resistance to 5 Hz and 20 Hz, AX reactance area, X reactance to 5 Hz, F resonance frequency, LCI lung clearance index, S ventilation heterogeneity of the conducting airways, S ventilation heterogeneity of the acinar airways. a = multiple breath nitrogen washout (MBNW) was measured in 36 subjects
Fig. 1Scatter plot of correlation between change(Δ) in Borg Adenosine and Borg AMP
Fig. 2Comparison of dry powder adenosine to AMP provocation. a. the change in Borg dyspnea score (ΔBorg), b. the change in the forced expiratory volume in 1 s (ΔFEV1), c. the change in the resistance of the respiratory system to 20 Hz (ΔR20), d. the change in lung clearance index reaching 2.5% of the starting nitrogen concentration in the lung (ΔLCI2.5%), e. the change in the lung clearance index reaching 5% of the starting nitrogen concentration in the lung (ΔLCI5%), f. the change in ventilation heterogeneity of the accinar airways (ΔSacin)
Fig. 3Dry powder adenosine: Spearman’s correlations to change in Borg dyspnea sensation (ΔBorg). a. the change in the forced expiratory volume in 1 s (ΔFEV1), b. the change in forced expiratory flow at 25% of forced vital capacity (FVC) (ΔFEF25), c. the change in forced expiratory flow at 75% of FVC (ΔFEF75), and d. the change in forced expiratory flow at 25 to 75% of the FVC (ΔFEF25–75)
Fig. 4AMP: Spearman’s correlations to change in Borg dyspnea sensation (ΔBorg). a. the change in forced expiratory volume in 1 s (ΔFEV1), b. the change in the difference in resistance of the respiratory system to 5 Hz and 20 Hz (ΔR5-R20), c. the change in reactance of the respiratory system to 5 Hz (ΔX5), and d. the change in reactance area (ΔAX)
Multivariate models predicting ΔBorg in AMP and adenosine provocation
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| B ( | B ( | |
| Gender | 0.25 (0.78) | 0.55 (0.62) |
| Smoking status | −0.11 (0.90) | − 0.23 (0.81) |
| Δ FEV1 (L) | −0.97 (0.62) | − 0.74 (0.72) |
| Δ FEF50 (Ls− 1) | 0.50 (0.54) | 0.60 (0.48) |
| Δ R20 (kPa sL−1) | −2.00 (0.76) | − 1.01 (0.88) |
| Δ X5 (kPa sL−1) | −0.64 (0.67) | − 0.69 (0.65) |
| Δ LCI5% | 0.22 (0.65) | |
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| B ( | B ( | |
| Gender | −0.83 (0.37) | −0.81 (0.37) |
| Smoking status | 0.32 (0.65) | 0.45 (0.51) |
| Δ FEV1 (L) | 1.50 (0.43) | 0.98 (0.60) |
| Δ FEF25–75 (Ls−1) | −2.18 (0.04) | − 1.82 (0.09) |
| Δ R20 (kPa sL− 1) | −8.28 (0.11) | −6.53 (0.20) |
| Δ R5-R20 (kPa sL− 1) | 2.61 (0.27) | 3.20 (0.18) |
| Δ Scond | 14.56 (0.16) | |
A. The models based on all subjects and B. the models incorporating multiple breath nitrogen washout (MBNW). Δ = change (post-pre); FEV1 = forced expiratory volume in the first second; FEF50 = forced expiratory flow at 50% of FVC; FEF25–75 = forced expiratory flow at 25 to 75% of FVC; R20 = resistance to 20 Hz; X5 = reactance to 5 Hz; R5-R20 = difference in resistance to 5 Hz and 20 Hz; LCI5% = lung clearance index at 5%; Scons = ventilation heterogeneity of the conducting airways