Related Experiment Video
Updated: Dec 20, 2025

Primary Human Nasal Epithelial Cells: Biobanking in the Context of Precision Medicine
Published on: April 22, 2022
Assessing Human Airway Epithelial Progenitor Cells for Cystic Fibrosis Cell Therapy
Rhianna E Lee1,2, Sean M Miller1, Teresa M Mascenik1
1Marsico Lung Institute/Cystic Fibrosis Center and.
Abstract:
Cystic fibrosis (CF) is caused by loss-of-function mutations in the CFTR (CF transmembrane regulator) gene. Pharmacologic therapies directed at CFTR have been developed but are not effective for mutations that result in little or no mRNA or protein expression. Cell therapy is a potential mutation-agnostic approach to treatment. One strategy is to harvest human bronchial epithelial cells (HBECs) for gene addition or genetic correction, followed by expansion and engraftment. This approach will require cells to grow extensively while retaining their ability to reconstitute CFTR activity. We hypothesized that conditionally reprogrammed cell (CRC) technology, namely growth in the presence of irradiated feeder cells and a Rho kinase inhibitor, would enable expansion while maintaining cell capacity to express functional CFTR. Our goal was to compare expression of the basal cell marker NGFR (nerve growth factor receptor) and three-dimensional bronchosphere colony-forming efficiency (CFE) in early- and later-passage HBECs grown using nonproprietary bronchial epithelial growth medium or the CRC method. Cell number and CFTR activity were determined in a competitive repopulation assay employing chimeric air-liquid interface cultures. HBECs expanded using the CRC method expressed the highest NGFR levels, had the greatest 3D colony-forming efficiency at later passage, generated greater cell numbers in chimeric cultures, and most effectively reconstituted CFTR activity. In our study, the HBEC air-liquid interface model, an informative testing platform proven vital for the development of other CF therapies, illustrated that cells grown by CRC technology or equivalent methods may be useful for cell therapy of CF.
Insights
Conditionally reprogrammed cells (CRCs) show promise for cystic fibrosis (CF) cell therapy. This method effectively expands human bronchial epithelial cells (HBECs), restoring CFTR function for potential mutation-agnostic treatments.
Area of Science:
- Regenerative Medicine
- Cell Biology
- Pulmonary Medicine
Background:
- Cystic fibrosis (CF) results from CFTR gene mutations, with current therapies ineffective for severe expression loss.
- Cell therapy offers a mutation-agnostic treatment strategy for CF.
- Human bronchial epithelial cells (HBECs) are a target for CF cell therapy, requiring extensive expansion while retaining function.
Purpose of the Study:
- To evaluate if conditionally reprogrammed cell (CRC) technology can expand HBECs while preserving CFTR activity.
- To compare NGFR expression and 3D bronchosphere colony-forming efficiency (CFE) between standard and CRC methods.
- To assess cell proliferation and CFTR function in a competitive repopulation assay.
Main Methods:
- HBECs were cultured using standard medium or CRC technology (feeder cells and Rho kinase inhibitor).
- NGFR expression and 3D CFE were assessed in early and late passages.
- Chimeric air-liquid interface cultures were used for competitive repopulation assays to determine cell number and CFTR activity.
Main Results:
- CRC-expanded HBECs showed higher NGFR levels and superior 3D CFE at later passages.
- CRC method resulted in greater cell expansion in chimeric cultures.
- CRC-expanded HBECs demonstrated the most effective reconstitution of CFTR activity.
Conclusions:
- CRC technology enables robust expansion of HBECs with retained capacity for functional CFTR expression.
- This method holds potential for developing effective cell therapies for cystic fibrosis.
- The HBEC air-liquid interface model is a valuable platform for evaluating CF cell therapies.
More Related Videos
08:00Generation of Human Nasal Epithelial Cell Spheroids for Individualized Cystic Fibrosis Transmembrane Conductance Regulator Study
Published on: April 11, 2018
10:46Generation of Airway Epithelial Cell Air-Liquid Interface Cultures from Human Pluripotent Stem Cells
Published on: June 14, 2022