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Updated: Apr 23, 2026

Generation of Defined Genomic Modifications Using CRISPR-CAS9 in Human Pluripotent Stem Cells
Published on: September 25, 2019
TALEN-mediated generation and genetic correction of disease-specific human induced pluripotent stem cells
Sivaprakash Ramalingam, Narayana Annaluru, Karthikeyan Kandavelou
1Department of Environmental Health Sciences, Bloomberg School of Public Health, Johns Hopkins University, 615 North Wolfe Street, Baltimore, Maryland 21205, USA. skullam1@jhu.edu.
Insights
This study demonstrates precise gene editing in patient-derived induced pluripotent stem cells (hiPSCs) for cystic fibrosis, Gaucher
Area of Science:
- Stem Cell Biology
- Gene Editing Technologies
- Regenerative Medicine
Background:
- Patient-derived induced pluripotent stem cells (hiPSCs) hold promise for regenerative medicine.
- Targeted genetic manipulation of hiPSCs is crucial for disease modeling and therapy.
- Gene-editing nucleases offer precise tools for genetic correction.
Purpose of the Study:
- To generate and genetically correct patient-derived hiPSCs for cystic fibrosis (CF) and Gaucher's disease (GD).
- To demonstrate site-specific correction of sickle cell disease (SCD) mutations in hiPSCs.
- To assess the safety of TALEN-mediated gene editing by evaluating off-target mutations.
Main Methods:
- Generation of CF and GD hiPSCs from patient fibroblasts using CCR5-specific TALENs and a reprogramming gene cassette.
- Site-specific correction of SCD mutations in hiPSCs using HBB-specific TALENs.
- Excision of the donor DNA cassette using Cre recombinase and assessment of gene editing efficiency and off-target effects.
Main Results:
- Successfully generated monoallelic and biallelic CCR5-modified hiPSCs from CF and GD patients.
- Achieved site-specific gene conversion of the mutated HBB locus in SCD hiPSCs, resulting in partial expression of the wild-type transcript upon erythroid differentiation.
- Confirmed no significant off-target mutations at closely related sites in TALEN-treated hiPSCs.
Conclusions:
- TALEN-mediated gene editing enables precise generation and genetic correction of disease-specific hiPSCs.
- This approach shows potential for developing cell-based therapies for genetic disorders like CF, GD, and SCD.
- The TALEN system demonstrates high specificity, minimizing risks associated with off-target mutations in therapeutic applications.
Abstract:
Generation and precise genetic correction of patient-derived hiPSCs have great potential in regenerative medicine. Such targeted genetic manipulations can now be achieved using gene-editing nucleases. Here, we report generation of cystic fibrosis (CF) and Gaucher's disease (GD) hiPSCs respectively from CF (homozygous for CFTRΔF508 mutation) and Type II GD [homozygous for β-glucocerebrosidase (GBA) 1448T>C mutation] patient fibroblasts, using CCR5- specific TALENs. Site-specific addition of loxP-flanked Oct4/Sox2/Klf4/Lin28/Nanog/eGFP gene cassette at the endogenous CCR5 site of patient-derived disease-specific primary fibroblasts induced reprogramming, giving rise to both monoallele (heterozygous) and biallele CCR5-modified hiPSCs. Subsequent excision of the donor cassette was done by treating CCR5-modified CF and GD hiPSCs with Cre. We also demonstrate site-specific correction of sickle cell disease (SCD) mutations at the endogenous HBB locus of patient-specific hiPSCs [TNC1 line that is homozygous for mutated β- globin alleles (βS/βS)], using HBB-specific TALENs. SCD-corrected hiPSC lines showed gene conversion of the mutated βS to the wild-type βA in one of the HBB alleles, while the other allele remained a mutant phenotype. After excision of the loxP-flanked DNA cassette from the SCD-corrected hiPSC lines using Cre, we obtained secondary heterozygous βS/βA hiPSCs, which express the wild-type (βA) transcript to 30-40% level as compared to uncorrected (βS/βS) SCD hiPSCs when differentiated into erythroid cells. Furthermore, we also show that TALEN-mediated generation and genetic correction of disease-specific hiPSCs did not induce any off-target mutations at closely related sites.
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