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Biology subjects

Tse, W. H.

Publications and source records attributed to Tse, W. H..

2 recordsLinked to original sources

Overactivated epithelial NF-κB disrupts lung development in human and nitrofen CDH

Background & ObjectiveAbnormal lung development is the main cause of morbidity and mortality in neonates with congenital diaphragmatic hernia (CDH), a common birth defect (1:2500) of largely unknown pathobiology. Recent studies discovered that inflammatory processes, and specifically NF-{kappa}B associated pathways are enriched in human and experimental CDH. However, the molecular signaling of NF-{kappa}B in abnormal CDH lung development and its potential as a therapeutic target requires further investigation. Methods & ResultsUsing sections and hypoplastic lung explant cultures from the nitrofen rat model of CDH and human fetal CDH lungs, we demonstrate that NF-{kappa}B and its downstream transcriptional targets are hyperactive during abnormal lung formation in CDH. NF-{kappa}B activity was especially elevated in the airway epithelium of nitrofen and human CDH lungs at different developmental stages. Fetal rat lung explants had impaired pseudoglandular airway branching after exposure to nitrofen, together with increased phosphorylation and transcriptional activity of NF-{kappa}B. Dexamethasone, the broad and clinically applicable anti-inflammatory NF-{kappa}B antagonist, rescued lung branching and normalized NF-{kappa}B signaling in hypoplastic lung explants. Moreover, specific NF-{kappa}B inhibition with curcumenol similarly rescued ex vivo lung hypoplasia and restored NF-{kappa}B signaling. Lastly, we showed that prenatal intraperitoneal dexamethasone administration to pregnant rat dams carrying fetuses with hypoplastic lungs, significantly improves lung branching and normalizes NF-{kappa}B in vivo. Conclusions: Our results indicate that NF-{kappa}B is aberrantly activated in human and nitrofen CDH lungs. Anti-inflammatory treatment with dexamethasone and/ or specific NF-{kappa}B inhibition should be investigated further as a therapeutic avenue to target lung hypoplasia in CDH.

developmental biology↗

A tracheal aspirate-derived airway basal cell model reveals a pro-inflammatory epithelial defect in congenital diaphragmatic hernia

RationaleCongenital diaphragmatic hernia (CDH) is characterized by incomplete closure of the diaphragm and lung hypoplasia. The pathophysiology of lung defects in CDH is poorly understood. ObjectivesTo establish a translational model of human airway epithelium in CDH for pathogenic investigation and therapeutic testing. MethodsWe developed a robust methodology of epithelial progenitor derivation from tracheal aspirates of newborns. Basal stem cells (BSCs) from CDH patients and preterm and term, non-CDH controls were derived and analyzed by bulk RNA-sequencing, ATAC-sequencing, and air-liquidinterface differentiation. Lung sections from fetal human CDH samples and the nitrofen rat model of CDH were subjected to histological assessment of epithelial defects. Therapeutics to restore epithelial differentiation were evaluated in human epithelial cell culture and the nitrofen rat model of CDH. Measurements and Main ResultsTranscriptomic and epigenetic profiling of CDH and non-CDH basal stem cells reveals a disease-specific, proinflammatory signature independent of severity or hernia size. In addition, CDH basal stem cells exhibit defective epithelial differentiation in vitro that recapitulates epithelial phenotypes found in fetal human CDH lung samples and fetal tracheas of the nitrofen rat model of CDH. Furthermore, steroid treatment normalizes epithelial differentiation phenotypes of human CDH basal stem cells in vitro and in nitrofen rat tracheas in vivo. ConclusionsOur findings have identified an underlying proinflammatory signature and BSC differentiation defects as a potential therapeutic target for airway epithelial defects in CDH.

developmental biology↗