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Updated: Sep 11, 2026

Systemic Delivery of MicroRNA Using Recombinant Adeno-associated Virus Serotype 9 to Treat Neuromuscular Diseases in Rodents
Published on: August 10, 2018
Dysregulated microRNA-mRNA networks in SOD1G93A mouse skeletal muscle reveal metabolic impairments in ALS
Libby Moody1, Eleni Christoforidou1, Greig Joilin1
1Department of Neuroscience, School of Life Sciences, University of Sussex, Brighton, UK.
Abstract:
Amyotrophic lateral sclerosis (ALS) is a multi-system disease in which skeletal muscle actively contributes to pathology, yet the regulatory circuits that drive muscle dysfunction remain unclear. We examined microRNA (miRNA)-messenger RNA (mRNA) interactions in the gastrocnemius of hSOD1G93A mice across presymptomatic, early- and late-symptomatic stages, using RNA-seq, bioinformatics, and RT-qPCR. Compared with hSOD1WT and non-transgenic controls, hSOD1G93A muscle showed mutation-specific transcriptome reprogramming: 48 dysregulated miRNAs and 558 mRNAs at presymptomatic, and 64 miRNAs and 685 mRNAs at late-symptomatic stages. Functional enrichment pinpointed carbohydrate-handling pathways (glycolysis/gluconeogenesis, pentose-phosphate, fructose-mannose metabolism) as the dominant downregulated gene sets. Network analysis revealed clusters in which upregulated miRNAs converged on, and showed inverse expression patterns relative to metabolic transcripts. RT-qPCR confirmed inverse expression of 10 candidate miRNAs and 11 metabolic mRNAs, substantiating miRNA-guided repression of glycolytic enzymes and energy-sensing nodes. Collectively, we show that SOD1G93A drives an early, sustained miRNA signature that dampens glycolysis gene expression, which could promote the fast-to-slow fibre-type transition and exacerbate energy deficit in ALS muscle. Targeting these circuits offers a strategy to restore metabolic balance and slow disease progression.
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