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Isolation of Cortical Microglia with Preserved Immunophenotype and Functionality From Murine Neonates
Published on: January 30, 2014
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.
Abstract:
As action potentials propagate along an axon, pulsed extracellular electric fields (E-fields) are induced. We investigated the role of E-fields in activating microglia cells and affecting capillary function and found that E-fields control human microglia secretions in concert with purinergic factors. We generated E-fields by applying transcranial pulsed electromagnetic fields (T-PEMF) identical to those appearing outside neurons as action potentials propagate. T-PEMF alone enhanced mRNA synthesis for VEGF, IL-8, IL-6 and the proglucagon gene as well as the PC1/3 enzyme that cleaves the proglucagon protein to glucagon and GLP-1 proteins. We found that T-PEMF enhanced secretion from microglia of VEGF, IL-8 and GLP-1 proteins having angiogenic and proliferative profiles. Interestingly, T-PEMF and purinergic transmitters together enhanced secretions confirming synergy between their actions. ATP also induced nitric oxide (NO) syntheses in distinct locations in the nucleus and the mRNA synthesis for the responsible iNOS was reduced by T-PEMF. When the microglia-secretory fluid was added to brain endothelial cells we saw vivid Ca2+ signaling and enhanced transcription of mRNA for IL-8 and VEGF. Our previous work shows that applying T-PEMF to the human brain provides up to 60% remission for patients with refractory depressions within 8 weeks and improvements for Parkinson patients. Thus, physiological E-fields activate microglia, work synergistically with neurotransmitters, and cause paracrine secretions which cause activation of capillaries. Application of these E-Fields is effective for treating refractory depressions and appear promising for treating neurodegenerative brain diseases.
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.

