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Updated: Jul 15, 2026

An Ex Vivo Laser-induced Spinal Cord Injury Model to Assess Mechanisms of Axonal Degeneration in Real-time
Published on: November 25, 2014
Reduced axon sprouting after treatment that diminishes microglia accumulation at lesions in the leech CNS
Emmanuel Mbaku Ngu1, Christie L Sahley, Kenneth J Muller
1Department of Physiology & Biophysics, University of Miami School of Medicine, Miami, FL 33136, USA. engu@med.miami.edu
Abstract:
The role of mammalian microglia in central nervous system (CNS) repair is controversial. Microglia accumulate at lesions where they act as immune cells and phagocytize debris, and they may secrete neurotrophins, but they also produce molecules that can be cytotoxic, like nitric oxide (NO). To determine the importance of microglial accumulation at lesions on growth of severed CNS axons in the leech (Hirudo medicinalis), in which axon and synapse regeneration are notably successful even when isolated in tissue culture medium, microglial migration to lesions was reduced. Pressure (P) sensory neurons were injected with biocytin to reveal the extent of their sprouting 24 hours after lesioning. To reduce microglia accumulation at lesions, cords were treated for 3.5 hours with 3 mM ATP or 2 mM N(omega)-nitro-L-arginine methyl ester (L-NAME) or 50 microM Reactive blue-2 (RB2) beginning 30 minutes before injury. Lesioned controls were either not treated with drug or treated 3 hours later with one of the drugs, after the migration and subsequent accumulation of most microglia had occurred, but before the onset of axon sprouting, for a total of seven separate conditions. There was a significant reduction in total sprout lengths compared with controls when microglial accumulation was reduced. The results suggest that microglial cells are necessary for the usual sprouting of injured axons.
Insights
Microglia accumulation at CNS lesions is crucial for axon sprouting and repair. Reducing microglia presence significantly inhibited the growth of severed axons in leeches, highlighting their necessity.
Area of Science:
- Neuroscience
- Cell Biology
- Regenerative Medicine
Background:
- The function of microglia in central nervous system (CNS) repair remains debated.
- Microglia act as immune cells, clearing debris, and may support regeneration, but can also cause damage via cytotoxic molecules like nitric oxide (NO).
Purpose of the Study:
- To investigate the role of microglial accumulation at CNS lesions in promoting axon regeneration.
- To determine if microglia are essential for the successful sprouting of injured axons.
Main Methods:
- Reduced microglial accumulation at lesions in the leech (Hirudo medicinalis) using ATP, L-NAME, or Reactive blue-2.
- Assessed axon sprouting of pressure sensory neurons 24 hours post-lesioning using biocytin injection.
Main Results:
- Significantly reduced total sprout lengths were observed when microglial accumulation at lesions was inhibited.
- Pharmacological interventions effectively decreased microglial presence at injury sites.
Conclusions:
- Microglial cells are necessary for the typical sprouting response of injured axons in the CNS.
- These findings suggest a critical supportive role for microglia in CNS axon regeneration.
