Germline gain-of-function (GOF) mutations in the signal transducer and activator of transcription 1 (STAT1) gene cause a dominantly inherited inborn error of immunity (IEI) characterized by chronic mucocutaneous candidiasis, autoimmunity, severe opportunistic infections and an increased risk of malignancy. Allogeneic hematopoietic stem cell (HSC) transplantation (HSCT) is curative but is associated with increased risk of morbidity and mortality in STAT1 GOF patients compared to other IEI. To develop a curative, autologous alternative to HSCT, we evaluated gene editing strategies in STAT1 GOF model cell lines, primary T cells, and patient-derived HSCs. Universal and mutation-specific strategies using CRISPR/Cas-mediated homology-directed repair (HDR) were limited by low efficacy (<25%), poor viability, and a lack of allele-specificity. In contrast, adenine base editing corrected the recurrent and highly pathogenic p.T385M mutation with upwards of 90% efficiency in patient T cells and HSCs without significant unintended on- or off-target genomic aberrations. Gene editing functionally restored total STAT1 expression (p<0.0217), STAT1 phosphorylation (p<0.0056), interferon-stimulated gene expression (OAS1; p=0.0005) and improved IL-17 production (p<0.0001). Edited HSCs retained multilineage differentiation capacity and sustained engraftment with persistence of the corrected allele at 16 weeks in humanized immunodeficient mice. These data demonstrate efficient and precise correction of STAT1 GOF mutations by base editing, with maintenance of the correction through long-term engraftment in vivo. This represents the first application of gene editing to correct a dominant gain-of-function mutation causing immunodeficiency, with potential applicability to other genetic disorders associated with heterozygous and gain-of-function mutations.
Robert Torrance, K. Orf, Nathan White et al.· Blood· 0 citations
Translating CRISPR-Cas9-based homology-directed repair (HDR) strategies into clinical application remains a major challenge due to limited standardization, concerns over safety, and efficacy issues. Here, we present a comprehensive and clinically compliant preclinical framework for the ex vivo correction of Wiskott-Aldrich syndrome (WAS) using a CRISPR-Cas9-AAV6 platform targeting hematopoietic stem and progenitor cells (HSPCs). In this study, we established a clinical-compatible platform enabling large-scale manufacturing while preserving HSPC viability, stemness, and multilineage functionality. To overcome low HSPC long-term engraftment, we fine-tuned AAV dosing and transiently modulated p53BP-dependent DNA damage response pathway, achieving significantly improved in vivo correction and repopulation. Importantly, we implemented a multi-tiered genotoxicity assessment strategy, integrating in silico, genome-wide, and orthogonal assays, revealing a largely favorable safety profile with minimal off-target risks and no evidence of clonal dominance or transformation during the study period. Longitudinal in vivo safety monitoring revealed donor-specific rare off-target events and structural variants. This highlights the crucial importance of patient monitoring after transplantation, further emphasized by the identification of a de novo chromosomal rearrangement that could be detected exclusively following cell engraftment in mice. This work offers a robust and adaptable roadmap for future HDR-based gene editing platforms, establishing critical benchmarks for efficacy, safety, and regulatory readiness in the development of advanced therapeutic medicinal products.
A. Naseem, W. Vetharoy, T. E. Whittaker et al.· Molecular therapy. Advances· 1 citation