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February 12, 2026Muscles0 citationsOpen Access

Neuromuscular Mechanisms and Oxidative Stress in Skeletal Muscle Atrophy: Emerging Stem Cell and Gene-Based Therapeutic Strategies

SGSathish Kumar GunasekaranMKMandam Amzad KhanMMMehwish A. Mirza

Key Points

  • This research aims to explore the interplay between neuromuscular mechanisms and oxidative stress in muscle atrophy and to identify therapeutic strategies.
  • Review of neuromuscular failures contributing to muscle atrophy.
  • Evaluation of stem cell and gene-based therapies targeting oxidative stress.
  • Analysis of bioengineering platforms that support muscle regeneration.
  • Identified mechanisms involving RONS activation of NF-κB and FOXO pathways leading to muscle degradation.
  • Discussed challenges of stem cell therapy in terms of engraftment and reinnervation.
  • Highlighted potential of gene-based interventions like antioxidant delivery and CRISPR to enhance muscle regeneration.

Abstract

Skeletal muscle atrophy emerges from intertwined neuromuscular and metabolic failures, in which neuromuscular junction destabilization, excitation contraction coupling defects, and mitochondrial dysfunction collectively intensify calcium dysregulation and drive the accumulation of reactive oxygen and nitrogen species (RONS), reinforcing proteolytic and catabolic signaling programs. To integrate recent evidence on the neuromuscular redox interface and highlight therapeutic strategies that target these interdependent drivers of atrophy. RONS-mediated activation of NF-κB and FOXO pathways accelerates ubiquitin proteasome and autophagy lysosome degradation, leading to motor unit loss. Stem cell therapies (satellite cells, MSCs, and iPSC progenitors) seek to restore regenerative potential but face hurdles in engraftment and reinnervation. Gene-based interventions, including antioxidant gene delivery, Nrf2 activation, RNA modulators, and CRISPR editing, offer new avenues but remain limited by safety and delivery barriers. Bioengineering platforms such as hydrogels, decellularized scaffolds, and extracellular vesicles provide architectural, trophic, and immunomodulatory support. Translational progress requires rigorous safety pipelines, mechanistic biomarkers of motor unit recovery, and modular combination regimens that integrate cells, genes, scaffolds, and rehabilitative input. By aligning neuromuscular biology with redox control, emerging strategies hold promise to rebuild innervated, fatigue-resistant muscle across acquired and genetic atrophy syndromes.

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Cite This Study

Gunasekaran et al. (2026) studied this question.

synapsesocial.com/papers/698d6e3c5be6419ac0d53bb9https://doi.org/10.3390/muscles5010013
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