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Minor snRNA gene delivery improves the loss of proprioceptive synapses on SMA motor neurons
Erkan Y. Osman, Meaghan Van Alstyne, Pei-Fen Yen, Francesco Lotti, Zhihua Feng, Karen K.Y. Ling, Chien-Ping Ko, Livio Pellizzoni, Christian L. Lorson
Erkan Y. Osman, Meaghan Van Alstyne, Pei-Fen Yen, Francesco Lotti, Zhihua Feng, Karen K.Y. Ling, Chien-Ping Ko, Livio Pellizzoni, Christian L. Lorson
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Research Article Neuroscience

Minor snRNA gene delivery improves the loss of proprioceptive synapses on SMA motor neurons

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Abstract

Spinal muscular atrophy (SMA) is an inherited neuromuscular disorder caused by reduced expression of the survival motor neuron (SMN) protein. SMN has key functions in multiple RNA pathways, including the biogenesis of small nuclear ribonucleoproteins that are essential components of both major (U2-dependent) and minor (U12-dependent) spliceosomes. Here we investigated the specific contribution of U12 splicing dysfunction to SMA pathology through selective restoration of this RNA pathway in mouse models of varying phenotypic severity. We show that virus-mediated delivery of minor snRNA genes specifically improves select U12 splicing defects induced by SMN deficiency in cultured mammalian cells, as well as in the spinal cord and dorsal root ganglia of SMA mice without increasing SMN expression. This approach resulted in a moderate amelioration of several parameters of the disease phenotype in SMA mice, including survival, weight gain, and motor function. Importantly, minor snRNA gene delivery improved aberrant splicing of the U12 intron–containing gene Stasimon and rescued the severe loss of proprioceptive sensory synapses on SMA motor neurons, which are early signatures of motor circuit dysfunction in mouse models. Taken together, these findings establish the direct contribution of U12 splicing dysfunction to synaptic deafferentation and motor circuit pathology in SMA.

Authors

Erkan Y. Osman, Meaghan Van Alstyne, Pei-Fen Yen, Francesco Lotti, Zhihua Feng, Karen K.Y. Ling, Chien-Ping Ko, Livio Pellizzoni, Christian L. Lorson

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Figure 7

Loss of proprioceptive synapses onto motor neurons is rescued by minor snRNA gene delivery in SMA mice.

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Loss of proprioceptive synapses onto motor neurons is rescued by minor s...
(A) Immunostaining showing ChAT+ motor neurons (green) and VGluT1+ proprioceptive synapses (red) from the ventral horn of the lumbar spinal cord (L3–5) of unaffected control mice and SMA mice either untreated or injected with AAV9-U11/U12 and AAV9-U11/U12/U4atac. Age at tissue harvest was P12. Scale bar: 20 μm. (B) The scatter plot diagram shows the number of glutamatergic synapses impinging on motor neuron somata from the same experimental groups as in A. Each individual dot represents the number of VGluT1+ synapses per motor neuron somata. For each treatment group and control groups, n = 4–5 mice and ~15 motor neurons per animal. Both treatment groups show significant preservation of central proprioceptive synapses compared with the untreated SMA mice. One-way ANOVA was applied where significance is represented by ***P ≤ 0.001.

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