Excitotoxin-induced caspase-3 activation and microtubule disintegration in axons is inhibited by taxol

Acta Neuropathol Commun. 2013 Sep 9:1:59. doi: 10.1186/2051-5960-1-59.

Abstract

Background: Axon degeneration, a key pathological event in many neurodegenerative diseases and injury, can be induced by somatodendritic excitotoxin exposure. It is currently unclear, however, whether excitotoxin-induced axon degeneration is mechanistically similar to Wallerian degeneration, which occurs following axon transection, but does not involve axonal caspase activation.

Results: We have used mouse primary cortical neurons at 9 days in vitro, in a compartmented culture model that allows separation of the axon from the soma, to examine the pathological cascade of excitotoxin-induced axon degeneration. Excitotoxicity induced by chronic exposure to kainic acid, resulted in axonal fragmentation, which was associated with activation of caspase-3 in the axonal compartment. To examine the role of microtubules in these events, the microtubule-stabilizing agent, taxol, was added to either the axonal or somatodendritic compartment. Our results demonstrated that microtubule stabilization of axons resulted in a significant reduction in the number of fragmented axons following excitotoxin exposure. Interestingly, taxol exposure to either the somatodendritic or axonal compartment resulted in reduced caspase-3 activation in axons, suggesting that caspase activation is a downstream event of microtubule destabilization and involves signalling from the cell soma.

Conclusion: These data suggest that excitotoxin-induced axon degeneration shows some mechanistic differences to Wallerian degeneration, and that microtubule stabilization may assist in protecting nerve cells from excitotoxic effects.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Animals
  • Axons / drug effects*
  • Axons / physiology
  • Caspase 3 / metabolism
  • Cells, Cultured
  • Cerebral Cortex / drug effects
  • Cerebral Cortex / physiopathology
  • Cytoskeleton / drug effects
  • Cytoskeleton / physiology
  • Dendrites / drug effects
  • Dendrites / physiology
  • Dose-Response Relationship, Drug
  • Kainic Acid / toxicity*
  • Mice
  • Microtubule-Associated Proteins / metabolism
  • Microtubules / drug effects
  • Nerve Degeneration / chemically induced
  • Nerve Degeneration / drug therapy*
  • Nerve Degeneration / physiopathology
  • Neuroprotective Agents / pharmacology*
  • Paclitaxel / pharmacology*
  • Wallerian Degeneration / physiopathology

Substances

  • Microtubule-Associated Proteins
  • Mtap2 protein, mouse
  • Neuroprotective Agents
  • Casp3 protein, mouse
  • Caspase 3
  • Paclitaxel
  • Kainic Acid