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Combination S100A1 and ARC gene therapy as a treatment for Duchenne muscular dystrophy cardiomyopathy
David W. Hammers, Cora C. Hart, Eli Zerpa, Karen I. Laurent, Young il Lee, Meg M. Sleeper, H. Lee Sweeney
David W. Hammers, Cora C. Hart, Eli Zerpa, Karen I. Laurent, Young il Lee, Meg M. Sleeper, H. Lee Sweeney
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Research Article Cardiology Muscle biology

Combination S100A1 and ARC gene therapy as a treatment for Duchenne muscular dystrophy cardiomyopathy

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Abstract

Duchenne muscular dystrophy (DMD) is a lethal pediatric striated muscle disease caused by loss of dystrophin for which there is no cure. Cardiomyopathy is the leading cause of death among individuals with DMD, and effective therapeutics to treat DMD cardiomyopathy are a major unmet clinical need. This work investigated adeno-associated viral (AAV) gene therapy approaches to treat DMD cardiomyopathy by overexpression of the calcium binding proteins S100A1 and apoptosis repressor with caspase recruitment domain (ARC). Using the severe D2.mdx mouse model of DMD, we identified that S100A1 gene therapy improves the diastolic dysfunction associated with DMD cardiomyopathy, whereas ARC gene therapy prolongs survival. The combination of S100A1 and ARC in a single bicistronic vector improves the long-term cardiac outcome and histopathology of D2.mdx mice and the development of heart failure caused by micro-dystrophin expression, and its safety was exhibited via intracoronary delivery in a canine model of DMD. In addition to robust cardiac benefits, S100A1-ARC gene therapy benefits D2.mdx skeletal muscle function and histopathology when driven by a striated muscle promoter. Together, these findings indicate that S100A1-ARC gene therapy represents an effective treatment for DMD cardiomyopathy and may have therapeutic benefits in treating other forms of cardiomyopathy and muscle pathologies.

Authors

David W. Hammers, Cora C. Hart, Eli Zerpa, Karen I. Laurent, Young il Lee, Meg M. Sleeper, H. Lee Sweeney

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Figure 5

S100A1-ARC gene therapy prevents micro-dystrophin cardiotoxicity.

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S100A1-ARC gene therapy prevents micro-dystrophin cardiotoxicity.
(A) Ma...
(A) Male D2.mdx mice were treated with the ΔR3-R21ΔCT micro-dystrophin (μDys) gene therapy with (n = 8) and without (n = 15) cotreatment with the bicistronic cardiac S100A1-ARC vector at 1 month of age and were evaluated for survival. (B) Cardiac expression of μDys was measured by immunoblotting at respective humane endpoints of the study. (C) Survival analysis reveals significant life-extension by cotreatment with S100A1-ARC. Echocardiographic measures of (D) ejection fraction, (E) stroke volume, and (F) end diastolic volume are shown for 20–22-month-old D2.WT (n = 6) mice, 20-month-old control D2.mdx (mdx-Con; n = 7) mice, and 22-month-old D2.mdx mice that received both micro-dystrophin and S100A1-ARC treatments at 1 month (mdx-μDys+S100A1-ARC; n = 5). (G) Representative H&E and Picrosirius red (PSR) stained images of left ventricles (LV) from D2.WT, D2.mdx-Con, D2.mdx- μDys+S100A1-ARC, and 12-month-old D2.mdx-μDys mice only (reached humane endpoint; scale bar: 100 μm) demonstrate differential histopathology across groups. (H) Cardiac fibrosis was quantified from PSR-stained samples. Data are displayed as (B and D–F) violin plots with individual values indicated by circles and (C) a survival curve. Data were analyzed using (B) a 2-tailed Welch’s t test (α = 0.05; P value indicated), (C) a Kaplan-Meier estimator analysis (α = 0.05), and (D–F) 1-factor ANOVA followed by multiple t tests with Bonferroni’s correction (α = 0.05; *P < 0.05 vs. WT values). Control D2.mdx survival data in C are also reported in Figure 3B.

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