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Published on: October 28, 2014
Generation of iPSCs from genetically corrected Brca2 hypomorphic cells: implications in cell reprogramming and stem
S Navarro1, V Moleiro, F J Molina-Estevez
1Hematopoietic Innovative Therapies Division, Centro de Investigaciones Energéticas, Medioambientales y Tecnológicas (CIEMAT), Madrid, Spain; Centro de Investigación Biomédica en Red de Enfermedades Raras (CIBER-ER), Madrid, Spain.
Abstract:
Fanconi anemia (FA) is a complex genetic disease associated with a defective DNA repair pathway known as the FA pathway. In contrast to many other FA proteins, BRCA2 participates downstream in this pathway and has a critical role in homology-directed recombination (HDR). In our current studies, we have observed an extremely low reprogramming efficiency in cells with a hypomorphic mutation in Brca2 (Brca2(Δ) (27/) (Δ27)), that was associated with increased apoptosis and defective generation of nuclear RAD51 foci during the reprogramming process. Gene complementation facilitated the generation of Brca2(Δ) (27/) (Δ27) induced pluripotent stem cells (iPSCs) with a disease-free FA phenotype. Karyotype analyses and comparative genome hybridization arrays of complemented Brca2(Δ) (27/) (Δ27) iPSCs showed, however, the presence of different genetic alterations in these cells, most of which were not evident in their parental Brca2(Δ) (27/) (Δ27) mouse embryonic fibroblasts. Gene-corrected Brca2(Δ) (27/) (Δ27) iPSCs could be differentiated in vitro toward the hematopoietic lineage, although with a more limited efficacy than WT iPSCs or mouse embryonic stem cells, and did not engraft in irradiated Brca2(Δ) (27/) (Δ27) recipients. Our results are consistent with previous studies proposing that HDR is critical for cell reprogramming and demonstrate that reprogramming defects characteristic of Brca2 mutant cells can be efficiently overcome by gene complementation. Finally, based on analysis of the phenotype, genetic stability, and hematopoietic differentiation potential of gene-corrected Brca2(Δ) (27/) (Δ) (27) iPSCs, achievements and limitations in the application of current reprogramming approaches in hematopoietic stem cell therapy are also discussed.
Insights
Fanconi anemia (FA) cells with BRCA2 mutations show poor reprogramming efficiency due to DNA repair defects. Gene correction overcomes this, enabling iPSC generation but highlighting challenges for stem cell therapy.
Area of Science:
- Genetics
- Stem Cell Biology
- DNA Repair
Background:
- Fanconi anemia (FA) is a genetic disorder linked to DNA repair pathway defects.
- BRCA2 protein is crucial for homology-directed recombination (HDR) within the FA pathway.
Purpose of the Study:
- To investigate the impact of BRCA2 mutations on cellular reprogramming efficiency.
- To assess the potential of gene correction to restore reprogramming and hematopoietic differentiation in FA cells.
Main Methods:
- Utilized mouse embryonic fibroblasts with a hypomorphic Brca2 mutation (Brca2(Δ27/Δ27)).
- Employed gene complementation to correct the Brca2 mutation and generate induced pluripotent stem cells (iPSCs).
- Analyzed reprogramming efficiency, apoptosis, RAD51 foci formation, karyotype, and hematopoietic differentiation potential.
Main Results:
- Brca2(Δ27/Δ27) cells exhibited significantly reduced reprogramming efficiency, increased apoptosis, and defective RAD51 foci.
- Gene complementation successfully generated Brca2(Δ27/Δ27) iPSCs with a corrected FA phenotype.
- Corrected iPSCs showed genetic alterations and limited hematopoietic differentiation efficacy compared to controls.
- Gene-corrected iPSCs failed to engraft in recipients, indicating functional limitations.
Conclusions:
- Homology-directed recombination (HDR) is critical for efficient cell reprogramming.
- Gene complementation can overcome reprogramming defects in Brca2 mutant cells.
- Current reprogramming strategies have limitations for hematopoietic stem cell therapy applications in FA.
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