Development of an AAV-Encoded Adenine Base Editor for Duchenne Muscular Dystrophy

Duchenne muscular dystrophy (DMD) is a devastating X-linked disorder caused by out-of-frame mutations in the DMD gene, most commonly large deletions or duplications, as well as nonsense and splice site mutations, that result in the absence of functional dystrophin protein. These mutations lead to progressive skeletal and cardiac muscle failure. In particular, exon 52 of the DMD gene represents a mutational hotspot in DMD patients. Deletion of exon 52 ( DMD Δ52) disrupts the reading frame, leading to premature termination of translation. Here, we used a dual recombinant adeno-associated virus (rAAV) system employing an intein-mediated split strategy to deliver ABE8e using the PAM-less SpRY Cas9 nickase for adenine base editing of splice acceptor sites (SAS) in the dystrophin gene. Targeting the SAS of exon 51 or exon 53 in a DMD Δ52 background aims to induce exon skipping, thereby restoring the open reading frame, in effect converting the severe DMD phenotype into a milder Becker muscular dystrophy (BMD)-like phenotype. We systematically screened sgRNAs in porcine kidney fibroblasts and human embryonic kidney cells (HEK293T), identifying a guide RNA targeting the SAS of exon 53 as the most effective candidate with high on-target editing efficacies and minimal bystander editing. In human DMDΔ52 iPSC-derived cardiomyocytes cultivated as 2D monolayers, high editing efficiencies were achieved with the optimized 1:2 ratio of N-Terminus to C-Terminus. Functional assessment in 3D engineered heart patches revealed a trend toward normalization of the arrhythmic DMD phenotype with an increase in the effective refractory period (ERP) and a reduction in arrhythmic load compared with untreated DMD patches, despite lower editing efficacy in the 3D setting. These findings suggest that even modest levels of base editing-mediated exon skipping may ameliorate the DMD cardiac phenotype toward a BMD-like state, supporting the translational potential of this dual rAAV base editing approach for DMD cardiomyopathy.

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Publication Details

Journal
Human Gene Therapy
Published
2026-09-15
DOI
https://doi.org/10.1177/10430342261486117
Primary Topic
CRISPR and Genetic Engineering
Type
article
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article

Development of an AAV-Encoded Adenine Base Editor for Duchenne Muscular Dystrophy

Christine M Poch, Julian Grünewald, Christian Kupatt, Alessandra Moretti et al.
Human Gene Therapy
CRISPR and Genetic Engineering
article

Development of an AAV-Encoded Adenine Base Editor for Duchenne Muscular Dystrophy

Christine M Poch, Julian Grünewald, Christian Kupatt, Alessandra Moretti, Tilman Ziegler, Vijayanand Rajendran, Karl‐Ludwig Laugwitz, Seyed Amir Shakouri, Tarik Bozoglu, Ina M. Luksch, Raphaela Moser, Eleonore Baier, Aylin Mayer
article en

Abstract

Duchenne muscular dystrophy (DMD) is a devastating X-linked disorder caused by out-of-frame mutations in the DMD gene, most commonly large deletions or duplications, as well as nonsense and splice site mutations, that result in the absence of functional dystrophin protein. These mutations lead to progressive skeletal and cardiac muscle failure. In particular, exon 52 of the DMD gene represents a mutational hotspot in DMD patients. Deletion of exon 52 ( DMD Δ52) disrupts the reading frame, leading to premature termination of translation. Here, we used a dual recombinant adeno-associated virus (rAAV) system employing an intein-mediated split strategy to deliver ABE8e using the PAM-less SpRY Cas9 nickase for adenine base editing of splice acceptor sites (SAS) in the dystrophin gene. Targeting the SAS of exon 51 or exon 53 in a DMD Δ52 background aims to induce exon skipping, thereby restoring the open reading frame, in effect converting the severe DMD phenotype into a milder Becker muscular dystrophy (BMD)-like phenotype. We systematically screened sgRNAs in porcine kidney fibroblasts and human embryonic kidney cells (HEK293T), identifying a guide RNA targeting the SAS of exon 53 as the most effective candidate with high on-target editing efficacies and minimal bystander editing. In human DMDΔ52 iPSC-derived cardiomyocytes cultivated as 2D monolayers, high editing efficiencies were achieved with the optimized 1:2 ratio of N-Terminus to C-Terminus. Functional assessment in 3D engineered heart patches revealed a trend toward normalization of the arrhythmic DMD phenotype with an increase in the effective refractory period (ERP) and a reduction in arrhythmic load compared with untreated DMD patches, despite lower editing efficacy in the 3D setting. These findings suggest that even modest levels of base editing-mediated exon skipping may ameliorate the DMD cardiac phenotype toward a BMD-like state, supporting the translational potential of this dual rAAV base editing approach for DMD cardiomyopathy.

Human Gene Therapy
German Centre for Cardiovascular Research (DE), Hospital Central da Polícia Militar (BR), Technical University of Munich (DE)
Quality Education
Openalex Percentile: Top 18%
CRISPR and Genetic Engineering
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