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Respiratory neuropathology in spinocerebellar ataxia type 7
Debolina D. Biswas, Yihan Shi, Léa El Haddad, Ronit Sethi, Meredith Huston, Sean Kehoe, Evelyn R. Scarrow, Laura M. Strickland, Logan A. Pucci, Justin S. Dhindsa, Ani Hunanyan, Albert R. La Spada, Mai K. ElMallah
Debolina D. Biswas, Yihan Shi, Léa El Haddad, Ronit Sethi, Meredith Huston, Sean Kehoe, Evelyn R. Scarrow, Laura M. Strickland, Logan A. Pucci, Justin S. Dhindsa, Ani Hunanyan, Albert R. La Spada, Mai K. ElMallah
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Research Article Neuroscience Pulmonology

Respiratory neuropathology in spinocerebellar ataxia type 7

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Abstract

Spinocerebellar ataxia type 7 (SCA7) is an autosomal dominant neurological disorder caused by deleterious CAG repeat expansion in the coding region of the ataxin 7 gene (polyQ-ataxin-7). Infantile-onset SCA7 leads to severe clinical manifestation of respiratory distress, but the exact cause of respiratory impairment remains unclear. Using the infantile-SCA7 mouse model, the SCA7266Q/5Q mouse, we examined the impact of pathological polyQ-ataxin-7 on hypoglossal (XII) and phrenic motor units. We identified the transcript profile of the medulla and cervical spinal cord and investigated the XII and phrenic nerves and the neuromuscular junctions in the diaphragm and tongue. SCA7266Q/5Q astrocytes showed significant intranuclear inclusions of ataxin-7 in the XII and putative phrenic motor nuclei. Transcriptomic analysis revealed dysregulation of genes involved in amino acid and neurotransmitter transport and myelination. Additionally, SCA7266Q/5Q mice demonstrated blunted efferent output of the XII nerve and demyelination in both XII and phrenic nerves. Finally, there was an increased number of neuromuscular junction clusters with higher expression of synaptic markers in SCA7266Q/5Q mice compared with WT controls. These preclinical findings elucidate the underlying pathophysiology responsible for impaired glial cell function and death leading to dysphagia, aspiration, and respiratory failure in infantile SCA7.

Authors

Debolina D. Biswas, Yihan Shi, Léa El Haddad, Ronit Sethi, Meredith Huston, Sean Kehoe, Evelyn R. Scarrow, Laura M. Strickland, Logan A. Pucci, Justin S. Dhindsa, Ani Hunanyan, Albert R. La Spada, Mai K. ElMallah

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Figure 5

Increase in neuromuscular junction (NMJ) clusters and higher expression of synaptic markers in SCA7 mice.

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Increase in neuromuscular junction (NMJ) clusters and higher expression ...
(A and B) Representative confocal images of 9-week WT (A) and SCA7 (B) diaphragms labeled with anti-ZNP1 (green, presynaptic marker), α-bungarotoxin (red, postsynaptic marker), and anti–neurofilament heavy chain (anti–NF-H, purple). Scale bars: 10 μm. (C) Graphical representation of the average number of NMJ clusters collected from 5 different fields from WT (n = 6) and SCA7 (n = 6) mice, colocalization of presynaptic and postsynaptic markers using Pearson’s correlation coefficient in WT (n = 5) and SCA7 (n = 5) mice, and area of endplates of WT (n = 6) and SCA7 (n = 6) mice at 9 weeks of age. (D and E) Expression of postsynaptic makers (F and G), presynaptic markers (H and I), and neurofilament in the diaphragm and tongue of 9-week WT (n = 5) and SCA7 (n = 6) mice. Data presented as mean ± SEM. *P < 0.05, **P < 0.01 by 2-tailed Student’s t test.

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