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Background: The effect of presently available CFTR modulator combinations, such as elexacaftor (ELX), tezacaftor (TEZ), and ivacaftor (IVA), on rare CFTR alleles is often unknown. Several assays have been developed, such as forskolin-induced swelling (FIS), to evaluate the rescue of such uncommon CFTR alleles both by established and novel modulators in patient-derived primary cell cultures (organoids). Presently, we assessed the CFTR-mediated electrical current across rectal organoid-derived epithelial monolayers. This technique, which allows separate measurement of CFTR-dependent chloride or bicarbonate transport, was used to assess the effect of ELX/TEZ/IVA on two rare CFTR variants.
Methods: Intestinal organoid cultures were established from rectal biopsies of CF patients carrying the rare missense mutations E193K or R334W paired with F508del. The effect of the CFTR modulator combination ELX/TEZ/IVA on CFTR-mediated Cl and HCO secretion was assessed in organoid-derived intestinal epithelial monolayers. Non-CF organoids were used for comparison. Clinical biomarkers (sweat chloride, FEV1) were monitored in patients receiving modulator therapy.
Results: ELX/TEZ/IVA markedly enhanced CFTR-mediated bicarbonate and chloride transport across intestinal epithelium of both patients. Consistent with the rescue of CFTR function in cultured intestinal cells, ELX/TEZ/IVA therapy improved biomarkers of CFTR function in the R334W/F508del patient.
Conclusions: Current measurements in organoid-derived intestinal monolayers can readily be used to monitor CFTR-dependent epithelial Cl and HCO transport. This technique can be explored to assess the functional consequences of rare CFTR mutations and the efficacy of CFTR modulators. We propose that this functional CFTR assay may guide personalized medicine in patients with CF-like clinical manifestations as well as in those carrying rare CFTR mutations.
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http://dx.doi.org/10.3390/jpm12040632 | DOI Listing |
Curr Opin Pulm Med
September 2025
4D Molecular Therapeutics, Emeryville, California, USA.
Purpose Of Review: There is a critical need for new therapies addressing the high unmet needs of individuals with rare lung diseases. This review examines the challenges industry sponsors face in developing therapeutic products for rare lung diseases, using cystic fibrosis as an example.
Recent Findings: Since the development of cystic fibrosis transmembrane conductance regulator (CFTR) modulators, the drug development landscape for cystic fibrosis has changed.
Lancet Respir Med
September 2025
Department for Paediatric Pneumology, Allergology, and Neonatology and German Center for Lung Research, Biomedical Research in Endstage and Obstructive Lung Disease, Hannover Medical School, 30625 Hannover, Germany. Electronic address:
Healthcare (Basel)
August 2025
Department of Pediatrics, Center for Cystic Fibrosis and Airway Disease Research, Emory University School of Medicine, Atlanta, GA 30322, USA.
The health technology assessment (HTA) is a multidisciplinary process utilized to determine the clinical, economic, social, and ethical value of new health technologies before they are incorporated into healthcare systems. In the case of rare diseases, such as Cystic Fibrosis (CF), challenges arise due to limited evidence and high treatment costs. Indeed, although CF transmembrane conductance regulator (CFTR) modulators are breakthrough therapies for CF, their incorporation into public health systems has been complex with considerable challenges, especially in low- and middle-income countries.
View Article and Find Full Text PDFACS Bio Med Chem Au
August 2025
Department of Physiology and Membrane Biology, University of California School of Medicine, Davis, California 95616, United States.
The most common cystic fibrosis mutation is the F508del mutation in the human cystic fibrosis transmembrane conductance regulator (hCFTR), which causes misfolding of the first of two nucleotide binding domains (NBD1/2), preventing Mg/ATP-dependent NBD dimerization for normal function. Although folding correctors elexacaftor/VX-445 and lumacaftor/VX-809 have been combined to correct the NBD1 misfolding, the exact correction pathway is still unknown. In this study, the constrained tertiary noncovalent interaction networks or the thermoring structures of dimerized NBD1 in hCFTR/E1371Q with or without F508del were analyzed to identify the weakest noncovalent bridge as the final post-translational tertiary folding of dimerized NBD1 in response to folding correctors.
View Article and Find Full Text PDFJ Physiol
August 2025
Dalton Cardiovascular Research Center, University of Missouri-Columbia, Columbia, MO, USA.