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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 8

The efficacy of systemic gene transfer is sustained over long-term treatment.

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The efficacy of systemic gene transfer is sustained over long-term treat...
(A) Experimental design: 3-month-old KO mice received a single injection of SYS (n = 3) or LS (n = 3) vector at a dose of 2.5 × 1013 vg/kg. Age-matched (10- to 10.5-month-old) wild-type (WT) and untreated Gaa–/– (KO) mice were used as controls. Muscle samples were collected 7 months after dosing. (B) Western blot analyses of whole muscle lysates with anti-human GAA antibody. Gapdh was used as a loading control. Graph shows GAA activity in muscle tissues from WT, untreated KO, and KO treated with SYS or LS vector. (C) Glycogen content in muscle tissues across the groups. (D) PAS-stained section of gastrocnemius muscle from SYS-treated mice appears normal (top right panel); individual fibers and clusters of fibers from LS-treated mice contain small PAS-positive material (bottom panels). Bars: 50 μm. (E) Immunostaining of single fibers with markers for lysosomes (LAMP1; green), autophagosomes (LC3; red), and nuclei (Hoechst dye; blue); muscle fibers from SYS-treated KO mice are free from autophagic buildup and appear normal; distended lysosomes and atrophic fibers (arrowhead) can be detected in fibers from LS-treated KO mice. Bars: 20 μm. Original magnification: D (PAS LS image on the left), ×2.5; D (PAS LS image on the right), ×1.5; E (LS), ×2.2. (F) Quantification of fiber size across the groups. (G) Muscle function was assessed using grip strength test after treatment. Statistical significance was determined by 1-way ANOVA. Graphs represent mean ± SD. **P < 0.01; ***P < 0.001; ****P < 0.0001.

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