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Amelioration of muscle and nerve pathology of Lama2-related dystrophy by AAV9-laminin-αLN linker protein
Karen K. McKee, Peter D. Yurchenco
Karen K. McKee, Peter D. Yurchenco
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Research Article Muscle biology Neuroscience

Amelioration of muscle and nerve pathology of Lama2-related dystrophy by AAV9-laminin-αLN linker protein

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Abstract

LAMA2 deficiency, resulting from a defective or absent laminin α2 subunit, is a common cause of congenital muscular dystrophy. It is characterized by muscle weakness from myofiber degeneration and neuropathy from Schwann cell amyelination. Previously it was shown that transgenic muscle-specific expression of αLNNd, a laminin γ1–binding linker protein that enables polymerization in defective laminins, selectively ameliorates the muscle abnormality in mouse disease models. Here, adeno-associated virus was used to deliver linker mini-genes to dystrophic dy2J/dy2J mice for expression of αLNNd in muscle, or αLNNdΔG2′, a shortened linker, in muscle, nerve, and other tissues. Linker and laminin α2 levels were higher in αLNNdΔG2′-treated mice. Both αLNNd- and αLNNdΔG2′-treated mice exhibited increased forelimb grip strength. Further, αLNNdΔG2′-treated mice achieved hind limb and all-limb grip strength levels approaching those of WT mice as well as ablation of hind limb paresis and contractures. This was accompanied by restoration of sciatic nerve axonal envelopment and myelination. Improvement of muscle histology was evident in the muscle-specific αLNNd-expressing mice but more extensive in the αLNNdΔG2′-expressing mice. The results reveal that an αLN linker mini-gene, driven by a ubiquitous promoter, is superior to muscle-specific delivery because of its higher expression that extends to the peripheral nerve. These studies support a potentially novel approach of somatic gene therapy.

Authors

Karen K. McKee, Peter D. Yurchenco

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Figure 2

Mouse grip strength.

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Mouse grip strength.
Specific grip strength values (average, SEM; A–C) a...
Specific grip strength values (average, SEM; A–C) and corresponding individual mouse values (D–F) are shown for forelimbs (A and D), hind limbs (B and E), and all limbs (C and F). dy2J/dy2J pups at postnatal day 1 were injected with AAV9-SPc5-12-αLNNd (red solid line and red inverted triangles; 5.5 × 1011 vg/pup) or with AAV9-CBh-αLNNdΔG2′ at 6.0 × 1011 vg/pup (green solid line; open green triangles), at 1.9 × 1011 vg/pup (gray short dashed line, gray diamonds), and a single mouse set at 0.95 × 1011 vg/pup (gray dotted line) via the temporal vein (n = 7–9 mice) and compared with untreated WT (black solid line, black circles) and dy2J/dy2J (blue solid line, blue squares) mice from 3 to 15 weeks of age. Statistical significance was determined from the average and SEM by 1-way ANOVA followed by Holm-Šidák test pairwise comparisons. The full set of 1-way ANOVA values are shown in Supplemental Table 2. Green hashtag symbols above the plots indicate no significant difference was found between WT and AAV9-CBh-αLNNdΔG2′ high-dose-treated dy2J/dy2J mice. Colored asterisks below plots indicate a significant difference between untreated dy2J/dy2J mice compared to WT (black), higher-dose AAV9-CBh-αLNNdΔG2′ (green), AAV9-CBh-αLNNdΔG2′ dy2J/dy2J (red), and/or lower-dose AAV9-CBh-αLNNdΔG2′ dy2J/dy2J (gray) mice.

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