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Author Spotlight: Insights into Cardiometabolic Diseases with Subcutaneous Adipose Tissue Microvasculature Studies
Published on: April 5, 2024
Defining the cross-tissue communication between lungs and white adipose tissue in chronic obstructive pulmonary
Wei Wang1, Stanley M H Chan1, Suleman Almerdasi1
1Centre for Respiratory Science and Health, School of Health and Biomedical Sciences, RMIT University, BUNDOORA, VIC 3083, Australia.
None:
Chronic obstructive pulmonary disease (COPD) is a systemic condition with significant extrapulmonary comorbidities. White adipose tissue (WAT) dysfunction, driven by cigarette smoke (CS) exposure, may contribute to systemic inflammation and disease progression. This study investigates whether oxidative stress mediates lung-adipose tissue cross-talk in COPD and whether targeting this pathway can mitigate both pulmonary and metabolic dysfunction. Male BALB/c mice were exposed to CS for 8 or 24 weeks, with or without apocynin, an NADPH oxidase inhibitor. Lung and WAT tissues were analysed for inflammation, oxidative stress, adipokine expression, and mitochondrial function. Phosphoproteomic profiling was performed on lung tissue. In vitro, conditioned media from CS-exposed bronchial epithelial cells and oxidatively primed adipocytes were used to assess reciprocal effects on adipocytes and epithelial cells. CS exposure induced airway inflammation, glucose intolerance, dyslipidaemia, and WAT dysfunction, including increased lipolysis, oxidative stress, and adipokine imbalance. Apocynin treatment reduced oxidative stress, normalised adipokine profiles, and restored mitochondrial markers in WAT. Phosphoproteomic analysis revealed activation of MAPK, TNF, and Apelin signalling pathways in the lungs. Conditioned media experiments confirmed bidirectional cross-talk: epithelial-derived factors impaired adipocyte function, while dysfunctional adipocytes triggered oxidative stress and apoptosis in bronchial epithelial cells.CS-induced oxidative stress drives a pathological feedback loop between the lungs and WAT, contributing to COPD progression and systemic metabolic dysfunction. Targeting redox-sensitive pathways may offer therapeutic strategies to disrupt this lung-adipose axis and improve outcomes in COPD.
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