Pulsed electric fields stimulate microglial transmitter release of VEGF, IL-8 and GLP-1 and activate endothelial

Frederikke Hyldahl1, Elisabeth Hem-Jensen1, Ulrik L Rahbek1

  • 1Department of Cellular and Molecular Medicine, The Faculty of Health Sciences, Panum Institute, University of Copenhagen, 2200N, Denmark.

Insights

Pulsed electric fields (E-fields) activate microglia, enhancing secretions like VEGF and GLP-1. These fields show promise in treating depression and neurodegenerative diseases by influencing brain capillary function.

Area of Science:

  • Neuroscience
  • Cell Biology
  • Biophysics

Background:

  • Action potentials induce extracellular electric fields (E-fields).
  • Microglia play a crucial role in brain function and disease.
  • Purinergic signaling is vital in neuronal and glial communication.

Purpose of the Study:

  • To investigate the role of E-fields in activating microglia.
  • To determine how E-fields affect microglia secretions and capillary function.
  • To explore the synergistic effects of E-fields and purinergic factors.

Main Methods:

  • Application of transcranial pulsed electromagnetic fields (T-PEMF) to mimic physiological E-fields.
  • Analysis of mRNA and protein synthesis (VEGF, IL-8, IL-6, proglucagon, PC1/3, iNOS).
  • Assessment of microglia-secreted factors on brain endothelial cells, including Ca2+ signaling and gene expression.

Main Results:

  • T-PEMF enhanced mRNA synthesis for VEGF, IL-8, IL-6, proglucagon, and PC1/3.
  • T-PEMF stimulated microglia to secrete VEGF, IL-8, and GLP-1 with angiogenic and proliferative properties.
  • Synergistic effects observed between T-PEMF and purinergic transmitters (ATP) on microglia secretions.
  • ATP-induced nitric oxide (NO) synthesis was modulated by T-PEMF.
  • Microglia-secretory fluid activated brain endothelial cells, increasing Ca2+ signaling and VEGF/IL-8 mRNA.

Conclusions:

  • Physiological E-fields activate microglia, influencing their secretory profile.
  • E-fields synergize with neurotransmitters, impacting brain capillary function via paracrine signaling.
  • T-PEMF shows therapeutic potential for refractory depression and neurodegenerative diseases.

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