Share
𝕏 Facebook LinkedIn

Electromagnetic field stimulation facilitates motor neuron excitability, myogenesis and muscle contractility in spinal cord transected rats.

PAPER pubmed Journal of biosciences 2022 Animal study Effect: benefit Evidence: Low

Abstract

Spinal cord injury (SCI) is one of the most devastating injuries which causes either complete or partial loss of movement, balance, muscular coordination and endurance. Electromagnetic field (EMF) stimulation has been shown to reduce muscle atrophy and fiber-type switching and improves muscle function in a hindlimb suspension model. The present study aims to elucidate the therapeutic potential of EMF stimulation on motor neuron excitability, soleus muscle morphology and function in complete SCI rats. Thirty-six adult male Wistar rats were randomly divided into Sham, SCI and SCI+EMF groups. Complete transection was done at the T13 spinal level, followed by whole-body EMF exposure for 7 or 14 days. Hyper-reflexia, muscle atrophy, reduction in twitch and tetanic force with earlier onset of fatigue was evident in the SCI group. EMF stimulation showed significant improvement in H and M wave parameters, H/M ratio, muscle twitch and tetanic force, fusion frequency and fatigability. A significant increase in regenerating myofibers and reduction in muscle degeneration following EMF was evident on histopathological examination. Further, EMF significantly increased myogenic protein levels responsible for muscle regeneration. Our study demonstrates for the first time the potential of EMF to modulate motor neuron excitability and muscle contractile function in SCI rats through activity-dependent mechanisms.

AI evidence extraction

At a glance
Study type
Animal study
Effect direction
benefit
Population
Adult male Wistar rats with complete spinal cord transection (T13)
Sample size
36
Exposure
whole-body EMF exposure (stimulation) · 7 or 14 days
Evidence strength
Low
Confidence: 74% · Peer-reviewed: yes

Main findings

In spinal cord transected rats, EMF stimulation for 7 or 14 days was associated with significant improvements in H and M wave parameters and H/M ratio, increased muscle twitch and tetanic force, improved fusion frequency and fatigability, increased regenerating myofibers with reduced muscle degeneration, and increased myogenic protein levels compared with SCI controls.

Outcomes measured

  • Motor neuron excitability (H and M wave parameters, H/M ratio)
  • Soleus muscle morphology (atrophy/degeneration, regenerating myofibers; histopathology)
  • Muscle function (twitch force, tetanic force, fusion frequency, fatigability/fatigue onset)
  • Myogenic protein levels related to muscle regeneration

Limitations

  • EMF exposure parameters (e.g., frequency, intensity/SAR) not reported in the abstract
  • Animal model (rats) may not generalize to humans
  • Only adult male rats were studied
  • Follow-up limited to 7 or 14 days post-exposure

Suggested hubs

  • animal-studies (0.9)
    Experimental EMF stimulation study in a rat spinal cord injury model assessing neuromuscular outcomes.
View raw extracted JSON
{
    "study_type": "animal",
    "exposure": {
        "band": null,
        "source": "whole-body EMF exposure (stimulation)",
        "frequency_mhz": null,
        "sar_wkg": null,
        "duration": "7 or 14 days"
    },
    "population": "Adult male Wistar rats with complete spinal cord transection (T13)",
    "sample_size": 36,
    "outcomes": [
        "Motor neuron excitability (H and M wave parameters, H/M ratio)",
        "Soleus muscle morphology (atrophy/degeneration, regenerating myofibers; histopathology)",
        "Muscle function (twitch force, tetanic force, fusion frequency, fatigability/fatigue onset)",
        "Myogenic protein levels related to muscle regeneration"
    ],
    "main_findings": "In spinal cord transected rats, EMF stimulation for 7 or 14 days was associated with significant improvements in H and M wave parameters and H/M ratio, increased muscle twitch and tetanic force, improved fusion frequency and fatigability, increased regenerating myofibers with reduced muscle degeneration, and increased myogenic protein levels compared with SCI controls.",
    "effect_direction": "benefit",
    "limitations": [
        "EMF exposure parameters (e.g., frequency, intensity/SAR) not reported in the abstract",
        "Animal model (rats) may not generalize to humans",
        "Only adult male rats were studied",
        "Follow-up limited to 7 or 14 days post-exposure"
    ],
    "evidence_strength": "low",
    "confidence": 0.7399999999999999911182158029987476766109466552734375,
    "peer_reviewed_likely": "yes",
    "keywords": [
        "electromagnetic field",
        "EMF stimulation",
        "spinal cord injury",
        "motor neuron excitability",
        "H-reflex",
        "M-wave",
        "H/M ratio",
        "soleus muscle",
        "myogenesis",
        "muscle contractility",
        "fatigability",
        "Wistar rat"
    ],
    "suggested_hubs": [
        {
            "slug": "animal-studies",
            "weight": 0.90000000000000002220446049250313080847263336181640625,
            "reason": "Experimental EMF stimulation study in a rat spinal cord injury model assessing neuromuscular outcomes."
        }
    ]
}

AI can be wrong. Always verify against the paper.

AI-extracted fields are generated from the abstract/metadata and may be incomplete or incorrect. This content is for informational purposes only and is not medical advice.

Comments

Log in to comment.

No comments yet.