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Woodworth, B. A.

Publications and source records attributed to Woodworth, B. A..

2 recordsLinked to original sources

Gene-Corrected Basal Cells Restore CFTR In Vitro; Transplants Regenerate Epithelium in a Preclinical Sinus Model

BackgroundCystic fibrosis (CF) is caused by mutations in the CFTR gene, leading to epithelial dysfunction and progressive lung disease. Although CFTR modulators have transformed care, [~]10% of people with CF remain without effective therapy. Durable, mutation-agnostic approaches are urgently needed. MethodWe used a lentiviral (LV) vector to deliver wild-type CFTR to airway basal cells derived from 13 paediatric CF participants with a range of genotypes. Transduced cells were assessed for transgene expression, epithelial differentiation, and CFTR function using air-liquid interface (ALI) cultures. Separately, to evaluate regenerative capacity in vivo, LVGFP-transduced rabbit airway basal cells were transplanted into the denuded nasal septum of healthy New Zealand white rabbits using a biocompatible scaffold. ResultsTransduced basal cells retained multilineage differentiation capacity, forming well-organized, pseudostratified epithelium with intact barrier function and ciliary activity. CFTR channel activity was restored to levels comparable to or exceeding those achieved with elexacaftor/tezacaftor/ivacaftor (ETI), including in individuals with nonsense mutations. Combined CFTR transduction plus ETI treatment showed additive benefit. In vivo, transplanted rabbit basal cells engrafted and differentiated to regenerate a mucociliary epithelium, with improved nasal potential difference and mucociliary clearance compared to scaffold-only controls. ConclusionOur study demonstrates that LV-mediated CFTR gene addition restores CFTR function in vitro across genotypes and supports epithelial regeneration in a clinically relevant animal airway model. This two-part platform offers a scalable path toward cell therapies for all people with CF and may have broader applications in upper airway epithelial repair.

cell biology↗

Low Molecular Weight Hyaluronan Inhibits Lung Epithelial Ion Channels by Activating Calcium-Sensing Receptor

Herein, we tested the hypothesis low molecular weight hyaluronan (LMW-HA) inhibits lung epithelial ion transport in-vivo, ex-vivo, and in-vitro by activating the calcium-sensing receptor (CaSR). Intranasal instillation of LMW-HA (150g/ml) to C57BL/6 mice inhibited their alveolar fluid clearance (AFC) by 75%, increased the epithelial lining fluid (ELF) thickness threefold, and lung wet/dry (W/D) ratio by 20% 24hrs later. Incubation of lung slices from mouse and human lungs with 150g/ml LMW-HA decreased the open probability (Po) of ENaC in ATII cell by more than 50% in 4hrs, inhibited amiloride sensitive short circuit current (SCC) 4hrs post exposure, and Cl- current through CFTR by more than 70%, and Na,K-ATPase current by 66% at 24hrs. In all cases the inhibitory effect of LMW-HA on lung epithelial ion transport in vivo, ex vivo, and in vitro preparations were reversed by the administration of 1M of NPS2143, a CaSR inhibitor, or 150g/ml HMW-HA. In HEK-293 cells co-transfected with CaSR and the calcium sensitive Cl- channel TMEM16-A, LMW-HA activated an inward Cl- current. These data are the first demonstration of the inhibitory effects of LMW-HA on lung epithelial ion and water transport, and are due to the activation of CaSR and its downstream signaling cascades.

physiology↗