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AAV-mediated delivery of secreted acid α-glucosidase with enhanced uptake corrects neuromuscular pathology in Pompe mice
Naresh K. Meena, Davide Randazzo, Nina Raben, Rosa Puertollano
Naresh K. Meena, Davide Randazzo, Nina Raben, Rosa Puertollano
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Research Article Muscle biology

AAV-mediated delivery of secreted acid α-glucosidase with enhanced uptake corrects neuromuscular pathology in Pompe mice

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Abstract

Gene therapy is under advanced clinical development for several lysosomal storage disorders. Pompe disease, a debilitating neuromuscular illness affecting infants, children, and adults with different severity, is caused by a deficiency of lysosomal glycogen-degrading enzyme acid α-glucosidase (GAA). Here, we demonstrated that adeno-associated virus–mediated (AAV-mediated) systemic gene transfer reversed glycogen storage in all key therapeutic targets — skeletal and cardiac muscles, the diaphragm, and the central nervous system — in both young and severely affected old Gaa-knockout mice. Furthermore, the therapy reversed secondary cellular abnormalities in skeletal muscle, such as those in autophagy and mTORC1/AMPK signaling. We used an AAV9 vector encoding a chimeric human GAA protein with enhanced uptake and secretion to facilitate efficient spread of the expressed protein among multiple target tissues. These results lay the groundwork for a future clinical development strategy in Pompe disease.

Authors

Naresh K. Meena, Davide Randazzo, Nina Raben, Rosa Puertollano

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Figure 3

Systemic gene transfer rescues cardiac and diaphragmatic pathology after short-term treatment at an intermediate dose.

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Systemic gene transfer rescues cardiac and diaphragmatic pathology after...
(A) Experimental design: 3-month-old KO mice received a single injection of systemic vector (SYS; n = 3) at a dose of 2.5 × 1013 vg/kg. Age-matched wild-type (WT) and untreated Gaa–/– (KO) mice were used as controls. Muscle samples were collected 1 month (mo) after dosing. (B) Western blot analyses of cardiac muscle and diaphragm lysates with anti-human GAA antibody. Gapdh was used as a loading control. (C) GAA activity in the heart and diaphragm far exceeds the WT levels. (D and E) PAS-stained sections of cardiac muscle and the diaphragm; PAS-positive material is abundant in the heart and diaphragm of a KO mouse; the pathology and glycogen content are fully normalized in the heart of SYS-treated KO; inset shows PAS-positive residual glycogen in some cells in the diaphragm despite the treatment. Bars: 50 μm. For inset in E, original magnification, ×2. Statistical significance was determined by 1-way ANOVA. Graphs represent mean ± SD. ****P < 0.0001.

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