Prime editing of human hematopoietic stem cells for correction of GATA2 deficiency

GATA2 (GATA binding protein 2) deficiency is a severe immunodeficiency caused by heterozygous variants in the gene encoding the transcription factor GATA2. Ex vivo gene editing of a patient’s own CD34 + hematopoietic stem and progenitor cells (HSPCs) could provide curative treatment. However, current methods that rely on nuclease-dependent editing face considerable challenges, including off-target effects, genotoxicity, and reduced engraftment potential. Here, we report the development of an efficient gene editing therapy for GATA2 deficiency using prime editing with a favorable safety profile in terms of off-target effects and genotoxicity. We used prime editing to correct a GATA2 c.956_962del variant in patient-derived CD34 + HSPCs, reaching up to 70% prime editing efficiency and an increase in functional GATA2 alleles from 50 to 77%. We demonstrate that prime-edited patient HSPCs showed increased engraftment potential compared with untreated cells and detected limited on-target genotoxicity and no off-target editing at the top 20 predicted sites. Short prestimulation of CD34 + HSPCs supported efficient prime editing while preserving stemness, mitigating p53 activation, and increasing multilineage engraftment. We report PASSIGE (prime editing–assisted site-specific integrase gene editing) in CD34 + HSPCs, developing a more broadly applicable, double-strand break–independent complementary DNA insertion strategy with the potential to address a large proportion of alleles causing GATA2 deficiency. Together, our results demonstrate the preclinical development of prime editing–based therapies for GATA2 deficiency in CD34 + HSPCs.

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Publication Details

Journal
Science Translational Medicine
Published
2026-09-30
DOI
https://doi.org/10.1126/scitranslmed.aec7031
Primary Topic
CRISPR and Genetic Engineering
Type
article
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article

Prime editing of human hematopoietic stem cells for correction of GATA2 deficiency

Jacob Fog Bentzon, Anaïs Marie Julie Møller, Thomas Wisbech Skov, Rasmus Otkjær Bak et al.
Science Translational Medicine
CRISPR and Genetic Engineering
article

Prime editing of human hematopoietic stem cells for correction of GATA2 deficiency

Jacob Fog Bentzon, Anaïs Marie Julie Møller, Thomas Wisbech Skov, Rasmus Otkjær Bak, Didde Haslund, Martin Kristian Thomsen, Anne Louise Revenfeld, Bjarne Kuno Møller, Trine Hyrup Mogensen, Sujan Ravendran, Jonas Holst Wolff, Mette Holm, Sofie Rahbek Dorset, Janni Sjelborg
article en

Abstract

GATA2 (GATA binding protein 2) deficiency is a severe immunodeficiency caused by heterozygous variants in the gene encoding the transcription factor GATA2. Ex vivo gene editing of a patient’s own CD34 + hematopoietic stem and progenitor cells (HSPCs) could provide curative treatment. However, current methods that rely on nuclease-dependent editing face considerable challenges, including off-target effects, genotoxicity, and reduced engraftment potential. Here, we report the development of an efficient gene editing therapy for GATA2 deficiency using prime editing with a favorable safety profile in terms of off-target effects and genotoxicity. We used prime editing to correct a GATA2 c.956_962del variant in patient-derived CD34 + HSPCs, reaching up to 70% prime editing efficiency and an increase in functional GATA2 alleles from 50 to 77%. We demonstrate that prime-edited patient HSPCs showed increased engraftment potential compared with untreated cells and detected limited on-target genotoxicity and no off-target editing at the top 20 predicted sites. Short prestimulation of CD34 + HSPCs supported efficient prime editing while preserving stemness, mitigating p53 activation, and increasing multilineage engraftment. We report PASSIGE (prime editing–assisted site-specific integrase gene editing) in CD34 + HSPCs, developing a more broadly applicable, double-strand break–independent complementary DNA insertion strategy with the potential to address a large proportion of alleles causing GATA2 deficiency. Together, our results demonstrate the preclinical development of prime editing–based therapies for GATA2 deficiency in CD34 + HSPCs.

Science Translational MedicineVol. 18(869)
Aarhus University (DK), Aarhus University Hospital (DK)
Openalex Percentile: Top 20%
CRISPR and Genetic Engineering
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