Subpial delivery of adeno-associated virus 9-synapsin-caveolin-1 (AAV9-SynCav1) preserves motor neuron and neuromuscular junction morphology, motor function, delays disease onset, and extends survival in hSOD1G93A mice

腺相关病毒 9-突触素-洞穴蛋白-1 (AAV9-SynCav1) 的软膜下递送可保持运动神经元和神经肌肉接头的形态、运动功能,延缓疾病发作,并延长 hSOD1G93A 小鼠的生存期

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作者:Shanshan Wang, Taiga Ichinomiya, Paul Savchenko, Dongsheng Wang, Atsushi Sawada, Xiaojing Li, Tiffany Duong, Wenxi Li, Jacqueline A Bonds, Eun Jung Kim, Atsushi Miyanohara, David M Roth, Hemal H Patel, Piyush M Patel, Takahiro Tadokoro, Martin Marsala, Brian P Head

Conclusion

In summary, subpial delivery of SynCav1 protects and preserves spinal motor neurons, and extends longevity in a familial mouse model of ALS without reducing the toxic monogenic component. Furthermore, subpial SynCav1 delivery preserved neuromuscular function in a rat model of FALS. The latter findings strongly indicate the therapeutic applicability of SynCav1 to treat ALS attributed to monogenic (FALS) and potentially in sporadic cases (i.e., SALS).

Methods

Motor function was assessed by voluntary running wheel (RW) in mice and forelimb grip strength (GS) and motor evoked potentials (MEP) in rats. Immunofluorescence (IF) microscopy for choline acetyltransferase (ChAT) was used to assess MN morphology. Neuromuscular junctions (NMJs) were measured by bungarotoxin-a (Btx-a) and synaptophysin IF. Body weight (BW) was measured weekly, and the survival curve was determined by Kaplan-Meier analysis.

Results

Following subpial gene delivery to the lumbar spinal cord, male and female hSOD1G93A mice treated with SynCav1 exhibited delayed disease onset, greater running-wheel performance, preserved spinal alpha-motor neuron morphology and NMJ integrity, and 10% increased longevity, independent of affecting expression of the mutant hSOD1G93A protein. Cervical subpial SynCav1 delivery to hSOD1G93A rats preserved forelimb GS and MEPs in the brachial and gastrocnemius muscles.

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