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Electromagnetic Field Stimulation Attenuates Phasic Nociception after Complete Spinal Cord Injury in Rats.

PAPER pubmed Brain sciences 2021 Animal study Effect: benefit Evidence: Low

Abstract

Traumatic spinal cord injury (SCI) is one of the most incapacitating pathologies, leading to huge rehabilitation challenges besides a social-economic burden on SCI patients and their families. There is no complete curative treatment available so far. Non-invasive and patient-friendly use of extremely low-frequency electromagnetic field stimulation (EMF) has emerged as a therapeutic and rehabilitation option. In this study, we tested whole-body EMF stimulation on thoracic complete SCI-induced nociception including sensorimotor deficits in rats. The EMF application significantly attenuated hyperalgesia and allodynia to thermal, electrical, and chemical stimuli from 6 weeks onwards as well as restoration of spinal reflexes, viz., H-reflex and nociceptive flexion reflex at the study endpoint (week 8). Besides, massively increased glutamate at the SCI injury site was observed in SCI rats with no treatment, which was also attenuated significantly by EMF stimulation. Spinal cord histology of the injury area showed a decrease in lesion volume and glial population in the EMF-stimulated rats. These findings indicate the beneficial role of EMF stimulation after thoracic complete SCI in adult male rats and, thereby, a beneficial patient-friendly rehabilitation tool.

AI evidence extraction

At a glance
Study type
Animal study
Effect direction
benefit
Population
Adult male rats with thoracic complete traumatic spinal cord injury
Sample size
Exposure
ELF whole-body electromagnetic field stimulation · from injury through week 8; effects reported from 6 weeks onwards
Evidence strength
Low
Confidence: 78% · Peer-reviewed: yes

Main findings

Whole-body extremely low-frequency EMF stimulation significantly attenuated hyperalgesia and allodynia from 6 weeks onwards and was associated with restoration of H-reflex and nociceptive flexion reflex by week 8. EMF stimulation also significantly attenuated increased glutamate at the injury site and was associated with decreased lesion volume and glial population on histology.

Outcomes measured

  • Hyperalgesia
  • Allodynia (thermal, electrical, chemical stimuli)
  • Sensorimotor deficits
  • Spinal reflexes (H-reflex, nociceptive flexion reflex)
  • Glutamate levels at injury site
  • Spinal cord histology (lesion volume, glial population)

Limitations

  • Frequency and dosimetry parameters not reported in the abstract
  • Sample size not reported in the abstract
  • Animal model (adult male rats) limits direct generalization to humans
View raw extracted JSON
{
    "study_type": "animal",
    "exposure": {
        "band": "ELF",
        "source": "whole-body electromagnetic field stimulation",
        "frequency_mhz": null,
        "sar_wkg": null,
        "duration": "from injury through week 8; effects reported from 6 weeks onwards"
    },
    "population": "Adult male rats with thoracic complete traumatic spinal cord injury",
    "sample_size": null,
    "outcomes": [
        "Hyperalgesia",
        "Allodynia (thermal, electrical, chemical stimuli)",
        "Sensorimotor deficits",
        "Spinal reflexes (H-reflex, nociceptive flexion reflex)",
        "Glutamate levels at injury site",
        "Spinal cord histology (lesion volume, glial population)"
    ],
    "main_findings": "Whole-body extremely low-frequency EMF stimulation significantly attenuated hyperalgesia and allodynia from 6 weeks onwards and was associated with restoration of H-reflex and nociceptive flexion reflex by week 8. EMF stimulation also significantly attenuated increased glutamate at the injury site and was associated with decreased lesion volume and glial population on histology.",
    "effect_direction": "benefit",
    "limitations": [
        "Frequency and dosimetry parameters not reported in the abstract",
        "Sample size not reported in the abstract",
        "Animal model (adult male rats) limits direct generalization to humans"
    ],
    "evidence_strength": "low",
    "confidence": 0.7800000000000000266453525910037569701671600341796875,
    "peer_reviewed_likely": "yes",
    "keywords": [
        "extremely low-frequency",
        "ELF-EMF",
        "electromagnetic field stimulation",
        "spinal cord injury",
        "SCI",
        "nociception",
        "hyperalgesia",
        "allodynia",
        "H-reflex",
        "nociceptive flexion reflex",
        "glutamate",
        "histology",
        "lesion volume",
        "glia"
    ],
    "suggested_hubs": []
}

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.

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