Rescue of CF airway epithelial cell function in vitro by a CFTR potentiator, VX-770

Fredrick Van Goor(Vertex Pharmaceuticals (United States)), Sabine Hadidaꝉ(Vertex Pharmaceuticals (United States)), Peter D. J. Grootenhuis(Vertex Pharmaceuticals (United States)), Bill Burton(Vertex Pharmaceuticals (United States)), Dong Cao(Vertex Pharmaceuticals (United States)), Tim Neuberger(Vertex Pharmaceuticals (United States)), Amanda Turnbull(Vertex Pharmaceuticals (United States)), Ashvani K. Singh(Vertex Pharmaceuticals (United States)), John Joubran(Vertex Pharmaceuticals (United States)), Anna Hazlewood(Vertex Pharmaceuticals (United States)), Jinglan Zhou(Vertex Pharmaceuticals (United States)), Jason McCartney(Vertex Pharmaceuticals (United States)), Vijayalaksmi Arumugam(Vertex Pharmaceuticals (United States)), Caroline J. Decker(Vertex Pharmaceuticals (United States)), Jennifer Yang(Vertex Pharmaceuticals (United States)), Chris Young(Vertex Pharmaceuticals (United States)), Eric R. Olson(Vertex Pharmaceuticals (United States)), Jeffery J. Wine(Stanford University), Raymond A. Frizzell(University of Pittsburgh), Melissa A. Ashlock(Cystic Fibrosis Foundation), Paul A. Negulescu(Vertex Pharmaceuticals (United States))
Proceedings of the National Academy of Sciences
October 22, 2009
Cited by 1,222Open Access
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Abstract

Cystic fibrosis (CF) is a fatal genetic disease caused by mutations in the gene encoding the CF transmembrane conductance regulator (CFTR), a protein kinase A (PKA)-activated epithelial anion channel involved in salt and fluid transport in multiple organs, including the lung. Most CF mutations either reduce the number of CFTR channels at the cell surface (e.g., synthesis or processing mutations) or impair channel function (e.g., gating or conductance mutations) or both. There are currently no approved therapies that target CFTR. Here we describe the in vitro pharmacology of VX-770, an orally bioavailable CFTR potentiator in clinical development for the treatment of CF. In recombinant cells VX-770 increased CFTR channel open probability (P(o)) in both the F508del processing mutation and the G551D gating mutation. VX-770 also increased Cl(-) secretion in cultured human CF bronchial epithelia (HBE) carrying the G551D gating mutation on one allele and the F508del processing mutation on the other allele by approximately 10-fold, to approximately 50% of that observed in HBE isolated from individuals without CF. Furthermore, VX-770 reduced excessive Na(+) and fluid absorption to prevent dehydration of the apical surface and increased cilia beating in these epithelial cultures. These results support the hypothesis that pharmacological agents that restore or increase CFTR function can rescue epithelial cell function in human CF airway.


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