Metabolic Dysregulation, Systemic Inflammation, and Pediatric Obesity-related Asthma
Deepa Rastogi1, Fernando Holguin2
11 Department of Pediatrics, Albert Einstein College of Medicine, Bronx, New York; and.
Insights
Obesity-related asthma in children involves immune system changes and metabolic issues like insulin resistance, impacting lung function. These factors contribute to a distinct asthma type requiring further research into underlying mechanisms.
Area of Science:
- Pediatric Pulmonology
- Immunology
- Metabolic Disorders
Background:
- Obesity-related asthma is a unique pediatric phenotype with significant disease burden and poor treatment response.
- This condition is linked to reduced lung function and altered systemic immune responses.
Purpose of the Study:
- To explore the pathophysiology of obesity-related asthma in children.
- To investigate the relationship between metabolic dysregulation, immune patterns, and pulmonary function deficits.
Main Methods:
- Analysis of systemic immune responses, specifically T-helper cell type 1 (Th1) patterns.
- Assessment of metabolic parameters including insulin resistance and high-density lipoprotein (HDL) levels.
- Correlation of these factors with pulmonary function measures like airway obstruction and expiratory reserve volume.
Main Results:
- Obese children with asthma exhibit a Th1-skewed immune response correlating with pulmonary function deficits.
- Increased prevalence of metabolic dysregulation, including insulin resistance and low HDL, is observed.
- Insulin resistance and low HDL are independently associated with reduced airway obstruction and expiratory reserve volume.
- Insulin resistance mediates the link between Th1 polarization and pulmonary function.
Conclusions:
- Obesity-related asthma is a distinct phenotype characterized by metabolic dysregulation and specific immune responses.
- Metabolic abnormalities, particularly insulin resistance, are directly associated with pulmonary function deficits in these children.
- Further research is needed to clarify the mechanisms connecting metabolic issues, immune responses, and lung function in pediatric obesity-related asthma.
Abstract:
Obesity-related asthma is a distinct pediatric asthma phenotype. It is associated with higher disease burden, lower pulmonary function, and suboptimal response to current asthma medications. Recent studies have made inroads into elucidating its pathophysiology. Systemic immune responses in obese children with asthma are skewed to a nonatopic T-helper cell type 1 (Th1) pattern that correlates with pulmonary function deficits. The prevalence of metabolic dysregulation is also higher among obese children with asthma than among normal-weight children with asthma. Insulin resistance and dyslipidemia, particularly low levels of high-density lipoprotein (HDL), are associated with lower airway obstruction and low expiratory reserve volume. These associations are independent of truncal and general adiposity and thereby suggest a direct association between metabolic abnormalities and pulmonary function. Furthermore, insulin resistance is associated with Th1 polarization, whereas low HDL is associated with monocyte activation. Although insulin resistance mediates the association of Th1 polarization with pulmonary function, HDL does not have a similar influence on the association of monocyte activation with pulmonary function. Together, these recent studies have paved the way to the understanding of obesity-related asthma as a distinct asthma phenotype and have begun to identify the complex relationships between metabolic dysregulation, systemic inflammation, and pulmonary function deficits in obese children with asthma. Studies are now needed to elucidate the mechanisms that link metabolic dysregulation and systemic immune responses to pulmonary function.
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