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Updated: Jun 13, 2025

Generation of Human Nasal Epithelial Cell Spheroids for Individualized Cystic Fibrosis Transmembrane Conductance Regulator Study
Published on: April 11, 2018
Cystic Fibrosis: A Journey through Time and Hope
Pascal Trouvé1, Aude Saint Pierre1, Claude Férec1
1Univ Brest, Inserm, EFS, UMR 1078, 22 Avenue Camille Desmoulins, F-29200 Brest, France.
Insights
Thirty years after discovering the cystic fibrosis transmembrane conductance regulator (CFTR) gene, significant advances have revolutionized cystic fibrosis care. Ongoing research focuses on developing therapies for all mutations, especially those causing complete protein absence.
Area of Science:
- Molecular genetics
- Ion channel physiology
- Disease pathophysiology
Background:
- Cystic fibrosis (CF) was a pediatric condition with a poor prognosis.
- The discovery of the CFTR gene in 1989 marked a turning point.
- CFTR gene discovery revolutionized CF understanding, research, and management.
Purpose of the Study:
- To review scientific and medical advances in CF pathophysiology and management.
- To highlight the impact of molecular genetic research on CF.
- To discuss current landscape, clinical management, and emerging therapies for CF.
Main Methods:
- Review of historical facts and scientific literature.
- Analysis of CFTR protein modeling and function.
- Examination of therapeutic advances, including protein modulators.
Main Results:
- CFTR gene discovery led to understanding protein function and identifying molecular partners.
- Protein modulators targeting membrane localization and chloride channel activity represent a major therapeutic advance.
- Challenges remain in developing treatments for mutations causing complete protein absence.
Conclusions:
- CF management has dramatically improved due to molecular genetic research.
- Personalized therapies tailored to specific CFTR mutations are advancing.
- Continued research is crucial for developing treatments for all CF patients, particularly those with absent CFTR protein.
Abstract:
Just over thirty years is the span of a generation. It is also the time that has passed since the discovery of the gene responsible for cystic fibrosis. Today, it is safe to say that this discovery has revolutionized our understanding, research perspectives, and management of this disease, which was, thirty years ago, a pediatric condition with a grim prognosis. The aim of this review is to present the advances that science and medicine have brought to our understanding of the pathophysiology of the disease and its management, which in many ways, epitomizes modern molecular genetic research. Since the discovery of the cystic fibrosis transmembrane conductance regulator (CFTR) gene in 1989, modeling the CFTR protein, deciphering its function as an ion channel, and identifying its molecular partners have led to numerous therapeutic advances. The most significant advancement in this field has been the discovery of protein modulators that can target its membrane localization and chloride channel activity. However, further progress is needed to ensure that all patients can benefit from a therapy tailored to their mutations, with the primary challenge being the development of treatments for mutations leading to a complete absence of the protein. The present review delves into the history of the multifaceted world of CF, covering main historical facts, current landscape, clinical management, emerging therapies, patient perspectives, and the importance of ongoing research, bridging science and medicine in the fight against the disease.
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