Type 2 diabetes (T2DM) is related to reduced pulmonary function. As experimental studies with glucagon-like peptide 1 (GLP-1) have shown an increase in pulmonary surfactant secretion, and the GLP-1 receptor has been found in significant amounts in the lung, it could be hypothesized that the treatment with liraglutide (a GL-1 agonist) will improve this reduced pulmonary function
There is growing evidence to suggest an association between type 2 diabetes and impaired pulmonary function. In this regard, several cross-sectional studies have appeared showing decreased indices of forced expiration, lung volume and diffusion capacity as the main lung dysfunctions detected in type 2 diabetic populations. In fact, diabetes is frequently co-morbid with chronic obstructive pulmonary disease, and data from the Atherosclerosis Risk in Communities Study showed a faster pulmonary function decline in type 2 diabetic patients than in other participants. This is important because the reduction of FEV1 has been demonstrated an independent cause of mortality in diabetic patients. Interestingly, lung function measures start to decrease several years before the diagnosis of diabetes. In this regard an investigation found that insulin resistance is an independent determinant of pulmonary function in non-diabetic morbidly obese women. In addition, the results suggest that the metabolic pathways related to insulin resistance are crucial in initiating lung abnormalities in type 2 diabetic patients. The reasons for the association between respiratory disease and diabetes are unclear. However, the relationship between type 2 diabetes and muscle strength, the impairment in lung elastic properties, and the presence of a low-grade chronic inflammation state are involved. In supporting these findings, thickening of the alveolar epithelia and pulmonary capillary basal lamina, fibrosis, centrilobular emphysema, and pulmonary microangiopathy have been detected in autopsies of diabetic patients. In addition, defects in the bronchiolar surfactant layer, which is involved in maintaining airway stability and diameter, may also be considered a contributing factor to the impairment of airway calibre regulation in diabetic patients. When the alveolocapillary barrier is damaged, surfactant proteins leak into the bloodstream. A recent population-based random sample study has described how increased circulating levels of surfactant protein A, the major surfactant-associated protein, were associated with altered glucose tolerance and insulin resistance. Therefore, surfactant defects in diabetic individuals may also lead to an increase in airway resistance and to a reduction in ventilatory patterns as observed in our studies. In addition, as experimental studies have shown that glucagon-like peptide 1 plays a role in the stimulation of surfactant production, its underlying deficit in type 2 diabetes could also enhance the airway resistance observed in these patients. However, the beneficial effects on pulmonary function using incretin-based therapies remain to be elucidated. Clinical trial study hypothesis is that treatment with an incretin mimetic such as liraglutide may ameliorate lung function parameters in type 2 diabetics patients, independently of weight reduction. This hypothesis is based on the following factors: 1. \- There is growing evidence to suggest an association between type 2 diabetes and impaired pulmonary function. 2. \- In patients with type 2 diabetes, the incretin effect is severely reduced or absent, contributing to the reduced lung function parameters observed in type 2 diabetic patients. 3. \- GLP-1 stimulates surfactant production in "in vitro" studies and, in consequence, the increase in surfactant production induced by liraglutide could be the main factor involved in the respiratory improvement.
Study Type
INTERVENTIONAL
Allocation
RANDOMIZED
Purpose
TREATMENT
Masking
DOUBLE
Enrollment
76
7-week subcutaneous liraglutide once daily
7-week subcutaneous placebo once daily
Hospital Universitari Germans Trias i Pujol
Badalona, Barcelona, Spain
Clínica Universidad de Navarra
Pamplona, Navarre, Spain
Hospital Universitari Vall d´Hebrón
Barcelona, Spain
Hospital Universitari Arnau de Vilanova de Lleida
Lleida, Spain
Changes From Baseline on Measurements of Respiratory Function Defined by Forced Expiratory Volume in 1 Second (FEV1)
Changes from baseline on measurements of respiratory function defined by forced expiratory volume in 1 second (FEV1). Mean difference between 7 weeks after treatment visit and baseline visit is registered.
Time frame: 7 weeks
Changes From Baseline on Measurements of Respiratory Function Defined by Forced Vital Capacity (FVC)
Changes from baseline on measurements of respiratory function defined by forced vital capacity (FVC). Mean difference between 7 weeks after treatment visit and baseline visit is registered.
Time frame: 7 weeks
Changes From Baseline in Serum Levels of Surfactant A and D Protein
Changes from baseline in serum levels of surfactant A and D protein. Values for surfactant A or D protein after 7 treatment weeks (liraglutide or placebo) are registered.
Time frame: 7 weeks
Changes From Baseline on Measurements of Respiratory Function Defined by Maximum Mid-expiratory Flow (FEF25-75)
Changes from baseline on measurements of respiratory function defined by Maximum mid-expiratory flow (FEF25-75). Mean difference between 7 weeks after treatment visit and baseline visit is registered.
Time frame: 7 weeks
Changes From Baseline on Measurements of Respiratory Function Defined by Forced Expiratory Volume in 1 Second/Forced Vital Capacity (FEV1/FVC)
Changes from baseline on measurements of respiratory function defined by forced expiratory volume in 1 second/forced vital capacity (FEV1/FVC). Mean difference between 7 weeks after treatment visit and baseline visit is registered.
Time frame: 7 weeks
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Hospital Universitario Virgen de la Victoria
Málaga, Spain
Hospital Universitario Virgen del Rocío
Seville, Spain
Changes From Baseline on Measurements of Respiratory Function Defined by Residual Volume (RV)
Changes from baseline on measurements of respiratory function defined by residual volume (RV).
Time frame: 7 weeks
Changes From Baseline on Measurements of Respiratory Function Defined by Total Lung Capacity (TLC)
Changes from baseline on measurements of respiratory function defined by Total lung capacity (TLC).
Time frame: 7 weeks
Changes From Baseline on Measurements of Respiratory Function Defined by Residual Functional Capacity (RFC)
Changes from baseline on measurements of respiratory function defined by Residual functional capacity (RFC) are registered. However, this parameter was not determined in patients due to an error in the programm used.
Time frame: 7 weeks