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  3. CFTR gene variant detection in moroccan individuals via nanopore long-read sequencing.
 

CFTR gene variant detection in moroccan individuals via nanopore long-read sequencing.

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BORIS DOI
10.48620/97790
Publisher DOI
10.3389/fgene.2026.1769093
PubMed ID
41953138
Description
Introduction
Cystic fibrosis (CF) is an autosomal recessive disease resulting from pathogenic CF transmembrane conductance regulator (CFTR) pathogenic gene variants. While CF's frequency varies among ethnicities, its epidemiology, clinical manifestations, and mutational profiles in Africa still must be explored due to the absence of a comprehensive public health strategy there. This study postulates that complete sequencing of CFTR using Oxford Nanopore Technology (ONT)-based long-read sequencing enhances the diagnostic yield.Methods And Results
To amplify ∼25-kb fragments covering the whole CFTR gene (NM_000492.4), we designed 11 primer pairs, and barcoded libraries were prepared and sequenced on ONT flow cells (R10.4.1) using an Mk1C device. Variant pathogenicity was assessed by expressing the variant channel in HEK293 cells and examining expression through immuno-blotting. With sequencing data obtained from 9 Moroccan individuals (6 probands with suspected CF diagnoses and 3 parents), we identified the following variants: c.680T>G p.Leu227Arg, c.1521_1523del p.Phe508del, c.3484C>T p.Arg1162*, c.1090T>C p.Ser364Pro, c.3233T>C p.Phe1078Ser and c.2991G>C p.Leu997Phe. The analytical pipeline we developed allowed the phasing of the variants. Sanger sequencing confirmed all these results. The previously uncharacterised CFTR variants p.Ser364Pro and p.Phe1078Ser exhibit diminished expression in HEK293 cells, substantiating their pathogenic nature, with p.Phe1078Ser responding positively to the in vitro treatment with CFTR-modulator molecules.Conclusion
This study demonstrates the potential of long-read sequencing using ONT as an efficient means to detect CF-causing variants in African populations. Given the significant genetic heterogeneity in Africa, this technique can serve as an affordable molecular screening tool for CF, especially in areas with constrained access to genetic screening.
Date of Publication
2026
Publication Type
Article
Subject(s)
600 Technology > 610 Medicine & health
500 Science
Keyword(s)
CF transmembrane conductance regulator
•
CFTR
•
cystic fibrosis
•
long-read sequencing
•
oxford nanopore technology
Language(s)
en
Contributor(s)
EL Makhzen, Nada
Institute of Biochemistry and Molecular Medicine (IBMM)
Graduate School for Cellular and Biomedical Sciences (GCB)
Nater, Alexander
Bioinformatics and Computational Biology
Rougier, Jean-Sébastien
Institute of Biochemistry and Molecular Medicine (IBMM)
Institut für Biochemie und Molekulare Medizin, Gruppe Abriel
Bokhobza, Alexandre
Institut für Physiologie - Cardiac Calcium Handling Group
Institute of Physiology
Sanz, Javier
Clinic of Human Genetics
Zweier, Christiane Gertrud
Clinic of Human Genetics
Hämmerli, Anne-Flore
Institute of Biochemistry and Molecular Medicine (IBMM)
Institut für Biochemie und Molekulare Medizin, Gruppe Abriel
Bruggmann, Rémy
Bioinformatics and Computational Biology
Bouguenouch, Laila
Lakhdar Idrissi, Mounia
Abriel, Huguesorcid-logo
Institute of Biochemistry and Molecular Medicine (IBMM)
Institut für Biochemie und Molekulare Medizin, Gruppe Abriel
Additional Credits
Institut für Physiologie - Cardiac Calcium Handling Group
Bioinformatics and Computational Biology
Graduate School for Cellular and Biomedical Sciences (GCB)
Clinic of Human Genetics
Institut für Biochemie und Molekulare Medizin, Gruppe Abriel
Institute of Biochemistry and Molecular Medicine (IBMM)
Institute of Physiology
Series
Frontiers in Genetics
Publisher
Frontiers Media
ISSN
1664-8021
Access(Rights)
open.access
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