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March 14, 2026Frontiers in Neuroscience0 citationsOpen Access

Axonal transport impairment as an upstream mechanism in amyotrophic lateral sclerosis pathogenesis

UGUri Gabbay

Key Points

  • Investigate axonal transport impairment as a key mechanism influencing ALS pathogenesis and motor neuron vulnerability.
  • Analyzed various ALS models including SOD1, TARDBP, FUS, and C9orf72 for transport deficits.
  • Utilized human-derived motor neurons and neuroimaging of mutation carriers to assess transport dysfunction.
  • Synthesized genetic and cellular evidence to explore mechanisms of intracellular trafficking disruptions.
  • Axonal transport deficits observed in presymptomatic stages across ALS models.
  • Transport impairment is linked to distal synaptic failure and motor neuron death.
  • Findings provide a basis for selective vulnerability of motor neurons and potential biomarkers for early detection.

Abstract

Amyotrophic lateral sclerosis (ALS) is a fatal neurodegenerative disorder characterized by progressive loss of upper and lower motor neurons. Despite marked genetic and pathological heterogeneity, a unifying pathogenic framework remains lacking. We propose that axonal transport impairment represents an early and convergent but genotype-modulated upstream vulnerability in ALS, contributing to distal synaptic failure, bioenergetic stress, protein aggregation, neuroinflammation, and neuronal death. Across many ALS models, including SOD1, TARDBP (TDP-43), FUS, and C9orf72, transport deficits are frequently detectable in presymptomatic stages, often preceding overt motor neuron loss or clinical manifestation, although temporal ordering varies by molecular subtype. Human data from induced pluripotent stem cell-derived motor neurons and neuroimaging in mutation carriers further support early transport dysfunction in both familial and sporadic ALS. We synthesize genetic, cellular, and systems-level evidence demonstrating that diverse ALS-associated mutations converge on intracellular trafficking machinery through distinct but interacting mechanisms, disrupting long-range cargo delivery and clearance in motor neurons. This framework provides a mechanistic basis for selective motor neuron vulnerability, the dying-back pattern of neuromuscular junction degeneration, and the emergence of downstream pathological hallmarks including mitochondrial dysfunction, excitotoxicity, aggregation, and inflammation. This model generates testable predictions regarding presymptomatic transport biomarkers and the timing of therapeutic intervention. We discuss implications for biomarker development and therapeutic strategy, proposing restoration of axonal transport as a central component of rational multimodal disease modification in ALS.

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Cite This Study

Uri Gabbay (2026) studied this question.

synapsesocial.com/papers/69b4fa9ab39f7826a300b5c2https://doi.org/10.3389/fnins.2026.1802313
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