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Electromagnetic Fields Generated by the IteraCoil Device Differentiate Mesenchymal Stem Progenitor Cells Into the Osteogenic Lineage.

PAPER pubmed Bioelectromagnetics 2022 In vitro study Effect: benefit Evidence: Very low

Abstract

Rapid advances in mesenchymal stem progenitor cells (MSPCs) have rendered impetus into the area of cell therapy and regenerative medicine. The main promise of future stem cell therapies is their reliance on autologous stem cells derived from adipose tissue, which also includes treatments of bone fractures and degeneration. The effectiveness of different electric devices utilized to reprogram MSPCs toward osteogenic differentiation has provided varying degrees of effectiveness for clinical use. Adipose tissue-derived MSPCs were flow-cytometrically characterized and further differentiated into osteoblasts by culturing either in growth medium with pro-osteogenic supplements or without supplements with alternating electromagnetic field (EMF) generated by IteraCoil. IteraCoil is a multi-solenoid coil with a specific complex geometry that creates a 3D-EMF with desired parameters without directly applying electrodes to the cells and tissues. The flow-cytometric analysis of highly enriched (≥95%) adipose-derived MSPCs (CD34 , CD73 , CD90 , and CD105 ) was utilized for the study. Osteoblasts and chondrocyte differentiations were then assessed by specific staining and quantified using ImageJ (National Institutes of Health). The osteoblastic differentiation of MSPCs cultured in regular medium and exposed to EMF at 0.05 and 1 kHz frequencies was compared with MSPCs cultured in a pro-osteogenic supplemented medium. In this study, we demonstrated that EMF from IteraCoil might have affected the signaling pathways that induce the osteogenic differentiation of human adipose-derived MSPCs in the absence of exogenous osteogenic factors. Therefore, EMF-generated osteogenic differentiation of reprogrammed adipose-derived autologous MSPCs may treat the loss of osteoblasts and osteoporosis and open new avenues for the development of regenerative cellular therapy. © 2022 Bioelectromagnetics Society.

AI evidence extraction

At a glance
Study type
In vitro study
Effect direction
benefit
Population
Human adipose tissue-derived mesenchymal stem progenitor cells (MSPCs)
Sample size
Exposure
IteraCoil device (multi-solenoid coil generating alternating EMF)
Evidence strength
Very low
Confidence: 74% · Peer-reviewed: yes

Main findings

Adipose-derived human MSPCs exposed to alternating EMF generated by the IteraCoil (0.05 and 1 kHz) showed osteoblastic differentiation in regular medium without exogenous pro-osteogenic supplements, compared against cells differentiated in pro-osteogenic supplemented medium. The authors report the EMF might have affected signaling pathways inducing osteogenic differentiation.

Outcomes measured

  • Osteogenic (osteoblastic) differentiation
  • Chondrocyte differentiation
  • Flow-cytometric characterization of MSPCs (CD34, CD73, CD90, CD105)
  • Staining-based differentiation assessment quantified with ImageJ

Limitations

  • In vitro study; findings may not translate to clinical outcomes
  • Sample size not reported in the abstract
  • Exposure duration and detailed EMF parameters beyond frequency are not reported in the abstract
View raw extracted JSON
{
    "study_type": "in_vitro",
    "exposure": {
        "band": null,
        "source": "IteraCoil device (multi-solenoid coil generating alternating EMF)",
        "frequency_mhz": null,
        "sar_wkg": null,
        "duration": null
    },
    "population": "Human adipose tissue-derived mesenchymal stem progenitor cells (MSPCs)",
    "sample_size": null,
    "outcomes": [
        "Osteogenic (osteoblastic) differentiation",
        "Chondrocyte differentiation",
        "Flow-cytometric characterization of MSPCs (CD34, CD73, CD90, CD105)",
        "Staining-based differentiation assessment quantified with ImageJ"
    ],
    "main_findings": "Adipose-derived human MSPCs exposed to alternating EMF generated by the IteraCoil (0.05 and 1 kHz) showed osteoblastic differentiation in regular medium without exogenous pro-osteogenic supplements, compared against cells differentiated in pro-osteogenic supplemented medium. The authors report the EMF might have affected signaling pathways inducing osteogenic differentiation.",
    "effect_direction": "benefit",
    "limitations": [
        "In vitro study; findings may not translate to clinical outcomes",
        "Sample size not reported in the abstract",
        "Exposure duration and detailed EMF parameters beyond frequency are not reported in the abstract"
    ],
    "evidence_strength": "very_low",
    "confidence": 0.7399999999999999911182158029987476766109466552734375,
    "peer_reviewed_likely": "yes",
    "keywords": [
        "IteraCoil",
        "alternating electromagnetic field",
        "mesenchymal stem progenitor cells",
        "adipose-derived",
        "osteogenic differentiation",
        "osteoblasts",
        "regenerative medicine",
        "in vitro",
        "kHz"
    ],
    "suggested_hubs": []
}

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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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