Olfactory Stem Cells, a New Cellular Model for Studying Molecular Mechanisms Underlying Familial Dysautonomia

被引:37
|
作者
Boone, Nathalie [1 ]
Loriod, Beatrice [2 ]
Bergon, Aurelie [2 ]
Sbai, Oualid [1 ]
Formisano-Treziny, Christine [3 ]
Gabert, Jean [3 ,4 ]
Khrestchatisky, Michel [1 ]
Nguyen, Catherine [2 ]
Feron, Francois [1 ]
Axelrod, Felicia B. [5 ]
Ibrahim, El Cherif [1 ]
机构
[1] Univ Mediterranee Fac Med Nord, NICN CNRS UMR 6184, IFR Jean Roche, Marseille, France
[2] INSERM, TAGC, U928, F-13258 Marseille, France
[3] Fac Med Marseille, CRO2, F-13385 Marseille, France
[4] Hop Nord Marseille, AP HM, Marseille, France
[5] NYU, Dept Pediat, Sch Med, New York, NY 10016 USA
来源
PLOS ONE | 2010年 / 5卷 / 12期
关键词
ELONGATOR COMPLEX; RNA-POLYMERASE; EXPRESSION; GENE; PROTEIN; IKBKAP; DIFFERENTIATION; CULTURE; TRANSCRIPTION; MUTATION;
D O I
10.1371/journal.pone.0015590
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Background: Familial dysautonomia (FD) is a hereditary neuropathy caused by mutations in the IKBKAP gene, the most common of which results in variable tissue-specific mRNA splicing with skipping of exon 20. Defective splicing is especially severe in nervous tissue, leading to incomplete development and progressive degeneration of sensory and autonomic neurons. The specificity of neuron loss in FD is poorly understood due to the lack of an appropriate model system. To better understand and modelize the molecular mechanisms of IKBKAP mRNA splicing, we collected human olfactory ectomesenchymal stem cells (hOE-MSC) from FD patients. hOE-MSCs have a pluripotent ability to differentiate into various cell lineages, including neurons and glial cells. Methodology/Principal Findings: We confirmed IKBKAP mRNA alternative splicing in FD hOE-MSCs and identified 2 novel spliced isoforms also present in control cells. We observed a significant lower expression of both IKBKAP transcript and IKAP/hELP1 protein in FD cells resulting from the degradation of the transcript isoform skipping exon 20. We localized IKAP/hELP1 in different cell compartments, including the nucleus, which supports multiple roles for that protein. We also investigated cellular pathways altered in FD, at the genome-wide level, and confirmed that cell migration and cytoskeleton reorganization were among the processes altered in FD. Indeed, FD hOE-MSCs exhibit impaired migration compared to control cells. Moreover, we showed that kinetin improved exon 20 inclusion and restores a normal level of IKAP/hELP1 in FD hOE-MSCs. Furthermore, we were able to modify the IKBKAP splicing ratio in FD hOE-MSCs, increasing or reducing the WT (exon 20 inclusion): MU (exon 20 skipping) ratio respectively, either by producing free-floating spheres, or by inducing cells into neural differentiation. Conclusions/Significance: hOE-MSCs isolated from FD patients represent a new approach for modeling FD to better understand genetic expression and possible therapeutic approaches. This model could also be applied to other neurological genetic diseases.
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页数:17
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