Related Experiment Video
Updated: Aug 17, 2025

Generation of Human Nasal Epithelial Cell Spheroids for Individualized Cystic Fibrosis Transmembrane Conductance Regulator Study
Published on: April 11, 2018
Patient-derived cell models for personalized medicine approaches in cystic fibrosis
Anabela S Ramalho1, Felice Amato2, Martina Gentzsch3
1Department of Development and Regeneration, KU Leuven, Leuven, Belgium.
Abstract:
Cystic fibrosis is caused by mutations in the cystic fibrosis transmembrane conductance regulator (CFTR) channel that perturb anion transport across the epithelia of the airways and other organs. To treat cystic fibrosis, strategies that target mutant CFTR have been developed such as correctors that rescue folding and enhance transfer of CFTR to the apical membrane, and potentiators that increase CFTR channel activity. While there has been tremendous progress in development and approval of CFTR therapeutics for the most common (F508del) and several other CFTR mutations, around 10-20% of people with cystic fibrosis have rare mutations that are still without an effective treatment. In the current decade, there was an impressive evolution of patient-derived cell models for precision medicine. In cystic fibrosis, these models have played a crucial role in characterizing the molecular defects in CFTR mutants and identifying compounds that target these defects. Cells from nasal, bronchial, and rectal epithelia are most suitable to evaluate treatments that target CFTR. In vitro assays using cultures grown at an air-liquid interface or as organoids and spheroids allow the diagnosis of the CFTR defect and assessment of potential treatment strategies. An overview of currently established cell culture models and assays for personalized medicine approaches in cystic fibrosis will be provided in this review. These models allow theratyping of rare CFTR mutations with available modulator compounds to predict clinical efficacy. Besides evaluation of individual personalized responses to CFTR therapeutics, patient-derived culture models are valuable for testing responses to developmental treatments such as novel RNA- and DNA-based therapies.
Insights
Patient-derived cell models are revolutionizing cystic fibrosis treatment by enabling personalized medicine approaches for rare CFTR mutations, guiding effective therapeutic strategies.
Area of Science:
- Biomedical research
- Genetics
- Cell biology
Background:
- Cystic fibrosis (CF) arises from mutations in the cystic fibrosis transmembrane conductance regulator (CFTR) gene, disrupting anion transport.
- Current CFTR modulators effectively treat common mutations like F508del, but rare mutations remain challenging.
- Precision medicine requires advanced models to address unmet therapeutic needs.
Approach:
- This review focuses on patient-derived cell culture models for personalized CF treatment.
- Utilizes nasal, bronchial, and rectal epithelial cells for CFTR defect evaluation.
- Employs in vitro assays like air-liquid interface cultures, organoids, and spheroids.
Key Points:
- Patient-derived models are crucial for characterizing CFTR defects and identifying targeted compounds.
- These models facilitate theratyping of rare CFTR mutations with existing modulator therapies.
- In vitro assays enable diagnosis and assessment of treatment efficacy for individual patients.
Conclusions:
- Patient-derived cell models are vital for advancing personalized medicine in cystic fibrosis.
- These models offer a pathway to predict clinical efficacy and test novel therapies.
- Future research includes evaluating RNA- and DNA-based therapies using these advanced models.

