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Updated: Jul 4, 2026

Rapid Viscoelastic Characterization of Airway Mucus Using a Benchtop Rheometer
Published on: April 21, 2022
Structural and cellular mechanisms of mucus plugging in the larger airways
Zheqing Hu1,2,3, Liyuan Yang1,2, Yabo Ma1,2,3
1Division of Pulmonary, Allergy and Critical Care Medicine, Department of Medicine, University of Alabama at Birmingham, Birmingham, AL 35294, USA.
Abstract:
Intractable mucus plugging drives mortality in cystic fibrosis (CF), asthma, and chronic obstructive pulmonary disease (COPD). While surface metaplasia narrows small airways, the massive volumetric reservoir capacity of hypertrophied submucosal glands (SMGs) dictates catastrophic mucus plugging in the larger airways. This review proposes a flush-load model to explain this structural failure: a biophysical imbalance in which SMG serous fluid secretion (the flush) is insufficient to hydrate and clear the burden of high-molecular-weight mucins (the load), leading to osmotic compression, ciliary collapse, and intractable luminal occlusion. The review delineates the disease-specific etiologies of this imbalance. In CF, dysfunction of ion channels, such as the cystic fibrosis transmembrane conductance regulator (CFTR) and epithelial sodium channels (ENaC), causes mechanical uncoupling and mucin 5B (MUC5B) tethering to glandular ducts. In asthma, Type 2 inflammation disrupts the glandular stem cells, driving an explosive release of mucin. In COPD, epidermal growth factor receptor (EGFR)-driven remodeling and senescent inflammaging perpetuate chronic hypersecretion. Ultimately, anchored MUC5B strands from hypertrophic SMGs structurally integrate with surface-derived mucin 5AC (MUC5AC), forming an intractable adhesive mesh. Synthesizing these insights, we advocate shifting the therapeutic paradigm from symptomatic downstream clearance to upstream, disease-modifying interventions that target the glandular stem cell niche, restore ion channel homeostasis, and correct coordinated airway surface dysfunction.
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