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Generation of Genomic Deletions in Mammalian Cell Lines via CRISPR/Cas9
Published on: January 3, 2015
In Vitro and In Vivo Genetic Disease Modeling via NHEJ-Precise Deletions Using CRISPR-Cas9
Sergio López-Manzaneda1,2, Isabel Ojeda-Pérez1,2, Nerea Zabaleta3
1Cell Differentiation and Cytometry Unit. Hematopoietic Innovative Therapies Division, Centro de Investigaciones Energéticas, Medioambientales y Tecnológicas (CIEMAT) and Centro de Investigación Biomédica en Red de Enfermedades Raras (CIBERER), Madrid, Spain.
Abstract:
The development of advanced gene and cell therapies for the treatment of genetic diseases requires reliable animal and cellular models to test their efficacy. Moreover, the availability of the target human primary cells of these therapies is reduced in many diseases. The development of endonucleases that can cut into specific sites of the cell genome, as well as the repair of the generated break by non-homologous end-joining, results in a variety of outcomes, insertions, deletions, and inversions that can induce the disruption of any specific gene. Among the many methods that have been developed for gene editing, CRISPR-Cas9 technology has become one of the most widely used endonuclease tools due to its easy design and its low cost. It has also been reported that the use of two guides, instead of just the one required, reduces the outcomes of non-homologous end joining mainly to the precise genomic sequences between the cutting sites of the guides used. We have explored this strategy to generate useful cellular and animal models. Different distances between the two guides have been tested (from 8 to 500 bp apart), and using the optimal range of 30-60 bp we have obtained a human primary cellular model of a genetic disease, pyruvate kinase deficiency, where the availability of the target cells is limited. We have also generated an in vivo model of glycolate oxidase (GO) deficiency, which is an enzyme involved in the glyoxylate metabolism following the same strategy. We demonstrate that the use of two-guide CRISPR-Cas9-induced non-homologous end joining is a feasible and useful tool for disease modeling, and it is most relevant to those diseases in which it is difficult to get the cells that will be genetically manipulated.
Insights
This study introduces a novel two-guide CRISPR-Cas9 gene editing method for creating disease models. This approach effectively generates cellular and animal models, particularly for genetic diseases with limited cell availability.
Area of Science:
- Genetics
- Molecular Biology
- Biotechnology
Background:
- Advanced gene and cell therapies require reliable disease models.
- Limited availability of target primary cells hinders genetic disease research.
- CRISPR-Cas9 technology offers a versatile tool for gene editing.
Purpose of the Study:
- To develop a refined gene editing strategy for generating disease models.
- To overcome limitations in target cell availability for genetic disease research.
- To explore the efficacy of dual-guide CRISPR-Cas9 for precise genomic modifications.
Main Methods:
- Utilized dual-guide CRISPR-Cas9 technology to induce targeted genomic breaks.
- Optimized the distance between guide RNAs (30-60 bp) to enhance precision.
- Applied the method to create cellular models for pyruvate kinase deficiency.
- Generated an in vivo model for glycolate oxidase (GO) deficiency.
Main Results:
- Successfully generated a human primary cellular model for pyruvate kinase deficiency.
- Established an in vivo animal model for glycolate oxidase deficiency.
- Demonstrated that dual-guide CRISPR-Cas9 significantly improves gene disruption precision.
Conclusions:
- Dual-guide CRISPR-Cas9-induced non-homologous end joining is a feasible and effective tool for disease modeling.
- This strategy is particularly valuable for diseases with scarce target cells.
- The method facilitates the creation of precise genetic modifications for research and therapeutic development.
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