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Updated: Feb 18, 2026

Identifying Microglia and Peripheral Infiltrating Macrophages in the Injured Spinal Cords Using Flow Cytometry
Published on: June 24, 2025
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.
Abstract:
Spinal cord injury (SCI) is insult to the spinal cord, which results in loss of sensory and motor function below the level of injury. SCI results in both immediate mechanical damage and secondary tissue degeneration. Following traumatic insult, activated microglia release proinflammatory cytokines and excess iron due to hemorrhage, initiating oxidative stress that contributes to secondary degeneration. Literature suggests that benefits are visible with the reduction in concentration of iron and activated microglia in SCI. Magnetic field attenuates oxidative stress and promotes axonal regeneration in vitro and in vivo. The present study demonstrates the potential of extremely low frequency magnetic field to attenuate microglia- and iron-induced secondary injury in SCI rats. Complete transection of the spinal cord (T13 level) was performed in male Wistar rats and subsequently exposed to magnetic field (50 Hz,17.96 µT) for 2 h daily for 8 weeks. At the end of the study period, spinal cords were dissected to quantify microglia, macrophage, iron content and study the architecture of lesion site. A significant improvement in locomotion was observed in rats of the SCI + MF group as compared to those in the SCI group. Histology, immunohistochemistry and flow cytometry revealed significant reduction in lesion volume, microglia, macrophage, collagen tissue and iron content, whereas, a significantly higher vascular endothelial growth factor expression around the epicenter of the lesion in SCI + MF group as compared to SCI group. These novel findings suggest that exposure to ELF-MF reduces lesion volume, inflammation and iron content in addition to facilitation of angiogenesis following SCI.
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.

