Extremely low frequency magnetic field protects injured spinal cord from the microglia- and iron-induced tissue

Soumil Dey1, Samrat Bose1, Suneel Kumar1

  • 1a Department of Physiology , All India Institute of Medical Sciences , New Delhi , India.

Insights

Extremely low frequency magnetic field (ELF-MF) therapy improved locomotion and reduced lesion volume in spinal cord injury (SCI) rats. ELF-MF treatment decreased inflammation, iron content, and enhanced blood vessel growth.

Area of Science:

  • Neuroscience
  • Biomedical Engineering
  • Regenerative Medicine

Background:

  • Spinal cord injury (SCI) causes sensory and motor function loss due to initial trauma and secondary degeneration.
  • Secondary degeneration involves microglia activation, inflammation, oxidative stress, and iron accumulation.
  • Reducing iron and microglia may mitigate SCI secondary damage.

Purpose of the Study:

  • To investigate the therapeutic potential of extremely low frequency magnetic field (ELF-MF) in mitigating secondary injury following SCI in rats.
  • To assess ELF-MF's effects on microglia, iron content, and tissue architecture in an SCI model.

Main Methods:

  • Male Wistar rats underwent spinal cord transection at T13.
  • The SCI group was exposed to a 50 Hz, 17.96 µT magnetic field for 2 hours daily over 8 weeks.
  • Histology, immunohistochemistry, and flow cytometry were used to analyze lesion volume, cell infiltration, iron content, and growth factor expression.

Main Results:

  • Rats exposed to ELF-MF (SCI + MF group) showed significant locomotor improvement compared to the SCI group.
  • ELF-MF treatment led to reduced lesion volume, microglia, macrophage, and iron content.
  • Increased vascular endothelial growth factor expression was observed in the SCI + MF group.

Conclusions:

  • ELF-MF exposure effectively reduces secondary injury, inflammation, and iron accumulation post-SCI.
  • ELF-MF therapy shows promise in promoting recovery and angiogenesis after spinal cord injury.