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Rathi, V.

Publications and source records attributed to Rathi, V..

2 recordsLinked to original sources

Airway mucins function as endogenous inhibitors of neutrophil extracellular traps

Neutrophils recruited to the airways are important for innate lung defense and can release neutrophil extracellular traps (NETs) to capture and eliminate microbes. While NETs are not abundant in healthy airways, uncontrolled NETosis is a known pathological feature and contributor to both chronic and acute respiratory diseases. Prior studies have shown that mucin glycoproteins secreted in the oral cavity and cervicovaginal tract can modulate NETosis, but it remains unknown whether mucins secreted in the respiratory tract influence NET formation. In these studies, we discovered that human airway mucus strongly inhibits NETosis in primary human neutrophils in a sialic acid dependent manner. In comparison, mucus produced by human airway epithelial cells genetically engineered to lack either MUC5B or MUC5AC secreted airway mucins showed a reduced ability to suppress NETosis. To assess how the lung microenvironment in obstructive lung diseases may influence mucus-dependent NET formation, we engineered a synthetic, mucin-laden hydrogel model with physical properties resembling that of mucus in a healthy lung and a disease-affected lung. When neutrophils were cultured on these gel substrates, we found that increasing gel stiffness led to a significantly greater extent of NETosis. Together these data demonstrate a new functional role of airway mucus in modulating neutrophil homeostasis in the respiratory tract and provide evidence that mucus dysfunction in disease can impair its ability to regulate NETosis.

immunology↗

Myeloperoxidase impairs mucociliary transport on human airway epithelium

Dampening neutrophil-driven inflammation in the airways remains a challenge in treating cystic fibrosis (CF) lung disease. Myeloperoxidase (MPO) is a neutrophilic enzyme that produces reactive oxygen species and is highly concentrated in CF sputum samples. Greater MPO concentrations have been previously correlated with increased mucus plugging in bronchiectasis, suggesting that the enzyme could impair mucociliary transport. MPO reacts competitively with either thiocyanate (SCN-) or chloride (Cl-) in the airways to catalyze the production of hypothiocyanous acid (HOSCN) or hypochlorous acid (HOCl), respectively. HOCl has proved in prior studies to be extremely cytotoxic, while HOSCN can drastically reduce cytotoxicity. The concentration of SCN- in the airways is largely dependent on transport by the cystic fibrosis transmembrane conductance regulator (CFTR) protein, which is dysfunctional in individuals with CF and causes low SCN- concentrations. CFTR modulator therapies likely raise the concentration of SCN- and enhance the production of HOSCN in the airways. We found that MPO inhibits mucociliary transport in vitro in regardless of SCN- concentrations primarily due to increasing the macromolecular components and effective viscosity of airway surface liquid. The impairment of mucus clearance by MPO was similar to neutrophil elastase (NE), another neutrophilic granular enzyme that damages the host tissues and induces the secretion of mucin proteins by the airway epithelium. Overall, these findings identify MPO as a therapeutic target to resolve deficits in airway clearance function in CF and other related muco-obstructive lung diseases.

cell biology↗