In vitro studies in an erythroid progenitor cell line and primary CD34+ cells demonstrated that the EPORW439* variant conferred a strong proliferative advantage to therapeutically modified erythroid progenitors, establishing a strategy to amplify the therapeutic benefit of otherwise limited in vivo HSPC gene editing for hemoglobinopathies.
Abstract
In vivo hematopoietic stem/progenitor cell (HSPC) gene therapy remains limited by low gene-editing efficiency and a lack of clinically applicable selection strategies to enrich therapeutically corrected progeny. We used in vivo base and prime editing to introduce a nonpathogenic EPOR variant into HSPCs, conferring erythropoietin hypersensitivity and promoting preferential expansion of gene-corrected erythroid cells. EPOR editing was combined with three therapeutic approaches for the correction of hemoglobinopathies: γ-globin gene addition, γ-globin reactivation, or correction of the sickle cell disease mutation. Tropism-modified helper-dependent adenoviral vectors (HDAd6/3+) targeting HSPCs were used to simultaneously deliver the EPOR-editing machinery and the corresponding therapeutic components. In vitro studies in an erythroid progenitor cell line and primary CD34+ cells demonstrated that the EPORW439* variant conferred a strong proliferative advantage to therapeutically modified erythroid progenitors. Mice humanized with CD34+ cells from a β0/β0-thalassemia patient were subjected to EPORW439*-mediated EPO hypersensitivity alongside a therapeutic γ-globin transgene which resulted in >70% HbF-positive erythroid cells and substantial reversion of the disease-associated phenotype, including reduced oxidative stress, near-complete elimination of splenic iron deposition, and reduced splenomegaly. Importantly, these effects were achieved after simple intravenous administration of the vectors following HSPC mobilization and cytokine prophylaxis, without subsequent pharmacologic selection. Together, these findings establish a strategy to amplify the therapeutic benefit of otherwise limited in vivo HSPC gene editing for hemoglobinopathies. Key Points EPOR editing confers a selective growth advantage to engineered erythroid cells under low-EPO conditions. In vivo EPOR editing enriches therapeutic erythroid output and supports a chemotherapy-free gene therapy strategy for hemoglobinopathies.
Thalassemia is a widespread hereditary blood disorder, characterized by defective or impaired production of the ???? or ????-globin chains that make up hemoglobin. This imbalance leads to ineffective erythropoiesis, anemia and additional associated symptoms. Current therapeutic strategies largely rely on hematopoietic...
Shreya Nair· International Journal For Mu...· 0 citations
Recent developments and refinements in gene transfer and editing technologies for HSPCs are reviewed, while also discussing the critical limitations and hurdles to clinical translation, as recently presented at the New Investigator Committee Gene Therapy webinar.
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Data support initiation of a first-in-human phase I trial of CRISPR_SCD001 for sickle patients presenting with severe pathology, and generates a clinical-grade, cryopreserved CD34+ cell product that corrects the sickle mutation, restores anti-sickling hemoglobins, and meets pre-clinical safety criteria.
M. DeWitt, Beatriz Campo-Fernández, Sohini Roy et al.· Molecular Therapy· 0 citations
An LNP is reported that efficiently delivers reporter mRNA to human HSPCs both in ex vivo and in vivo settings when conjugated with the anti-CD34 antibody (CD34/LNPDP).
Jingjing Du, Zijin Luo, Dan Xie et al.· Nature Biomedical Engineerin...· 2 citations
SUMMARY Ex vivo hematopoietic stem cell (HSC) gene therapy is effective for non-malignant blood disorders including sickle cell disease (SCD), but requires hospitalization, ex vivo cell manipulation, and conditioning. Direct in vivo gene delivery could remove these barriers and widen access. Here, we explore phagocytos...
Denise Klatt, Adele Mucci, Bo-Ya Liu et al.· Cell Stem Cell· 0 citations