Small-scale high-throughput sequencing-based identification of new therapeutic tools in cystic fibrosis

被引:28
作者
Bonini, Jennifer [1 ,2 ]
Varilh, Jessica [1 ,3 ]
Raynal, Caroline [1 ,3 ]
Theze, Corinne [1 ,3 ]
Beyne, Emmanuelle [1 ,3 ]
Audrezet, Marie-Pierre [4 ]
Ferec, Claude [4 ]
Bienvenu, Thierry [5 ]
Girodon, Emmanuelle [5 ]
Tuffery-Giraud, Sylvie [1 ,2 ]
Des Georges, Marie [1 ,3 ]
Claustres, Mireille [1 ,2 ]
Taulan-Cadars, Magali [1 ,2 ]
机构
[1] INSERM, U827, Lab Genet Malad Rares, Montpellier, France
[2] Univ Montpellier I, UFR Med, Montpellier, France
[3] CHU Montpellier, Mol Genet Lab, Montpellier, France
[4] CHRU, Lab Genet Mol & Histocompatibil, Brest, France
[5] Grp Hosp Cochin Broca Hotel Dieu, AP HP, Serv Biochim & Genet Mol, Paris, France
关键词
antisense oligonucleotides; cystic fibrosis; intronic mutation; next-generation sequencing; pseudoexon skipping; CFTR GENE; MESSENGER-RNA; PULMONARY-DISEASE; HIGH-FREQUENCY; IN-VITRO; MUTATION; VARIANTS; DIAGNOSIS; ASSOCIATION; EXPRESSION;
D O I
10.1038/gim.2014.194
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Purpose: Although 97-99% of CFTR mutations have been identified, great efforts must be made to detect yet-unidentified mutations. Methods: We developed a small-scale next-generation sequencing approach for reliably and quickly scanning the entire gene, including noncoding regions, to identify new mutations. We applied this approach to 18 samples from patients suffering from cystic fibrosis (CF) in whom only one mutation had hitherto been identified. Results: Using an in-house bioinformatics pipeline, we could rapidly identify a second disease-causing CFTR mutation for 16 of 18 samples. Of them, c.1680-883A>G was found in three unrelated CF patients. Analysis of minigenes and patients' transcripts showed that this mutation results in aberrantly spliced transcripts because of the inclusion of a pseudoexon. It is located only three base pairs from the c.1680-886A>G mutation (1811+1.6kbA>G), the fourth most frequent mutation in southwestern Europe. We next tested the effect of antisense oligonucleotides targeting splice sites on these two mutations on pseudoexon skipping. Oligonucleotide transfection resulted in the restoration of the full-length, in-frame CFTR transcript, demonstrating the effect of antisense oligonucleotide-induced pseudoexon skipping in CF. Conclusion: Our data confirm the importance of analyzing noncoding regions to find unidentified mutations, which is essential to designing targeted therapeutic approaches.
引用
收藏
页码:796 / 806
页数:11
相关论文
共 34 条
[21]   Prediction of Mutant mRNA Splice Isoforms by Information Theory-Based Exon Definition [J].
Mucaki, Eliseos J. ;
Shirley, Ben C. ;
Rogan, Peter K. .
HUMAN MUTATION, 2013, 34 (04) :557-565
[22]   Targeted capture and massively parallel sequencing of 12 human exomes [J].
Ng, Sarah B. ;
Turner, Emily H. ;
Robertson, Peggy D. ;
Flygare, Steven D. ;
Bigham, Abigail W. ;
Lee, Choli ;
Shaffer, Tristan ;
Wong, Michelle ;
Bhattacharjee, Arindam ;
Eichler, Evan E. ;
Bamshad, Michael ;
Nickerson, Deborah A. ;
Shendure, Jay .
NATURE, 2009, 461 (7261) :272-U153
[23]   Antisense-based RNA therapy of factor V deficiency: in vitro and ex vivo rescue of a F5 deep-intronic splicing mutation [J].
Nuzzo, Francesca ;
Radu, Claudia ;
Baralle, Marco ;
Spiezia, Luca ;
Hackeng, Tilman M. ;
Simioni, Paolo ;
Castoldi, Elisabetta .
BLOOD, 2013, 122 (23) :3825-3831
[24]   A new type of mutation causes a splicing defect in ATM [J].
Pagani, F ;
Buratti, E ;
Stuani, C ;
Bendix, R ;
Dörk, T ;
Baralle, FE .
NATURE GENETICS, 2002, 30 (04) :426-429
[25]   Five percent of normal cystic fibrosis transmembrane conductance regulator mRNA ameliorates the severity of pulmonary disease in cystic fibrosis [J].
Ramalho, AS ;
Beck, S ;
Meyer, M ;
Penque, D ;
Cutting, GR ;
Amaral, MD .
AMERICAN JOURNAL OF RESPIRATORY CELL AND MOLECULAR BIOLOGY, 2002, 27 (05) :619-627
[26]   A Classification Model Relative to Splicing for Variants of Unknown Clinical Significance: Application to the CFTR Gene [J].
Raynal, Caroline ;
Baux, David ;
Theze, Corinne ;
Bareil, Corinne ;
Taulan, Magali ;
Roux, Anne-Francoise ;
Claustres, Mireille ;
Tuffery-Giraud, Sylvie ;
Georges, Marie des .
HUMAN MUTATION, 2013, 34 (05) :774-784
[27]   NF-E2-related factor 2, a key inducer of antioxidant defenses, negatively regulates the CFTR transcription [J].
Rene, Celine ;
Lopez, Estelle ;
Claustres, Mireille ;
Taulan, Magali ;
Romey-Chatelain, Marie-Catherine .
CELLULAR AND MOLECULAR LIFE SCIENCES, 2010, 67 (13) :2297-2309
[28]   Experimental Assessment of Splicing Variants Using Expression Minigenes and Comparison with In Silico Predictions [J].
Sharma, Neeraj ;
Sosnay, Patrick R. ;
Ramalho, Anabela S. ;
Douville, Christopher ;
Franca, Arianna ;
Gottschalk, Laura B. ;
Park, Jeenah ;
Lee, Melissa ;
Vecchio-Pagan, Briana ;
Raraigh, Karen S. ;
Amara, Margarida D. ;
Karchin, Rachel ;
Cutting, Garry R. .
HUMAN MUTATION, 2014, 35 (10) :1249-1259
[29]   Defining the disease liability of variants in the cystic fibrosis transmembrane conductance regulator gene [J].
Sosnay, Patrick R. ;
Siklosi, Karen R. ;
Van Goor, Fredrick ;
Kaniecki, Kyle ;
Yu, Haihui ;
Sharma, Neeraj ;
Ramalho, Anabela S. ;
Amaral, Margarida D. ;
Dorfman, Ruslan ;
Zielenski, Julian ;
Masica, David L. ;
Karchin, Rachel ;
Millen, Linda ;
Thomas, Philip J. ;
Patrinos, George P. ;
Corey, Mary ;
Lewis, Michelle H. ;
Rommens, Johanna M. ;
Castellani, Carlo ;
Penland, Christopher M. ;
Cutting, Garry R. .
NATURE GENETICS, 2013, 45 (10) :1160-U292
[30]   Next generation diagnostics of cystic fibrosis and CFTR-related disorders by targeted multiplex high-coverage resequencing of CFTR [J].
Trujillano, D. ;
Ramos, M. D. ;
Gonzalez, J. ;
Tornador, C. ;
Sotillo, F. ;
Escaramis, G. ;
Ossowski, S. ;
Armengol, L. ;
Casals, T. ;
Estivill, X. .
JOURNAL OF MEDICAL GENETICS, 2013, 50 (07) :455-462