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Updated: May 2, 2026

A Reversible, Non-invasive Method for Airway Resistance Measurements and Bronchoalveolar Lavage Fluid Sampling in Mice
Published on: April 14, 2010
Beta-adrenergic responses in drug-free subjects with asthma
Abstract:
Young atopic subjects with asthma who had taken no medication for 30 days and had normal pulmonary function were compared to atopic and nonatopic control subjects in several measures of beta-adrenergic response. Subjects with asthma required a larger dose of infused isoproterenol (14.3 +/- 3.9 ng/kg/min) to increase pulse pressure by a target greater than 22 mm Hg than nonatopic control subjects (8.7 +/- 3.3 ng/kg/min). Asymptomatic atopic control subjects had intermediate sensitivity (12.0 +/- 6.0 ng/kg/min) (F = 3.67; p less than 0.05). At the dose of infused isoproterenol producing the target pulse pressure response, the increase in low-frequency (1 to 8 cycles per minute) heart rate variability was less in subjects with asthma (107 +/- 34% increase in normal subjects versus 9 +/- 21% increase in subjects with asthma; p less than 0.05). In addition, subjects with the least beta-adrenergic responsiveness had the most reactive airways. Airway reactivity (assessed by the provocative concentration of methacholine causing a 20% fall in FEV1) correlated with both the dose of isoproterenol required for the target pulse pressure response (Rs = -0.46; p less than 0.05) and the isoproterenol-induced increase in low-frequency heart-rate variability (Rs = 0.47; p less than 0.05). In contrast, in lymphocytes and granulocytes from these same subjects, the cAMP response to isoproterenol and beta-adrenergic receptor number were identical in normal subjects and subjects with asthma and unrelated to airway reactivity or to cardiovascular beta-adrenergic responses. Thus, different results for beta-adrenergic responsiveness in subjects with asthma are obtained in different tests in the same subjects.
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