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PGC-1α pathway dysregulation disrupts myofiber specification in a mouse model of SBMA
Curtis J. Kuo, Laura B. Chopp, Zhigang Yu, Luhan Ni, Hien T. Zhao, Janghoo Lim, Andrew P. Lieberman
Curtis J. Kuo, Laura B. Chopp, Zhigang Yu, Luhan Ni, Hien T. Zhao, Janghoo Lim, Andrew P. Lieberman
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Research Article Muscle biology Neuroscience

PGC-1α pathway dysregulation disrupts myofiber specification in a mouse model of SBMA

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Abstract

Skeletal muscle pathology is a critical but poorly understood contributor to neuromuscular degeneration in spinal and bulbar muscular atrophy (SBMA), a CAG/polyglutamine (polyQ) expansion disorder caused by mutation in the androgen receptor (AR). Using a gene-targeted SBMA mouse model, we applied single-nucleus RNA sequencing to identify a disease-specific population of skeletal muscle myonuclei that replaced normal myonuclear subtypes. This transition was associated with dysregulation of the pathway governed by PGC-1α, a central regulator of myofiber specification and metabolic identity. PGC-1α dysfunction in SBMA muscle was age, hormone, and polyQ length dependent and was partially rescued by subcutaneous delivery of AR-targeted antisense oligonucleotides. Integrated ChIP-seq and RNA-seq analyses revealed that aberrant PGC-1α activity promoted the expression of a distinct set of myofiber specification genes while downregulating those that define healthy Type IIb and Type IIx myonuclei. We propose a model in which this dysfunction arose downstream of polyQ-mediated sequestration of PGC-1α cofactors MEF2, CREB, and CBP, leading to transcriptional reprogramming and cellular dysfunction. These findings implicated PGC-1α dysregulation as a key event linking AR polyQ expansion to skeletal muscle degeneration and suggested a shared mechanism for polyQ-mediated muscle pathology across related neurodegenerative diseases.

Authors

Curtis J. Kuo, Laura B. Chopp, Zhigang Yu, Luhan Ni, Hien T. Zhao, Janghoo Lim, Andrew P. Lieberman

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Figure 7

Model of polyQ-mediated transcriptional dysregulation in skeletal muscle highlights the role of sequestration of PGC-1α partners.

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Model of polyQ-mediated transcriptional dysregulation in skeletal muscle...
(A) Representative immunofluorescence images of intranuclear MEF2 (top), CBP (middle), and CREB (bottom) staining in levator ani/bulbocavernosus muscle from AR113Q male mice at 26 weeks. Costained with p62 (green) and DAPI (blue). Scale bars: 5 μm. (B) Proposed model leading to partially dysfunctional myonuclei in SBMA: In AR113Q muscle, canonical partner transcription factors of PGC-1α are sequestered in intranuclear aggregates containing polyQ AR. As a consequence, PGC-1α coactivates the transcription of an alternate set of myonuclei specification genes, rather than genes that define Type IIb and Type IIx myonuclei. TF, transcription factor. Created in BioRender (https://BioRender.com/l5ith5k).

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