Related Experiment Video
Updated: Aug 5, 2025

Assessing Microglial Phagocytosis of Myelin Debris in vitro Under Repeated Magnetic Stimulation
Published on: June 17, 2025
Microglial Cytokines Mediate Plasticity Induced by 10 Hz Repetitive Magnetic Stimulation
Amelie Eichler1, Dimitrios Kleidonas1,2,3, Zsolt Turi1
1Department of Neuroanatomy, Institute of Anatomy and Cell Biology, Faculty of Medicine, University of Freiburg, 79104 Freiburg, Germany.
Abstract:
Microglia, the resident immune cells of the CNS, sense the activity of neurons and regulate physiological brain functions. They have been implicated in the pathology of brain diseases associated with alterations in neural excitability and plasticity. However, experimental and therapeutic approaches that modulate microglia function in a brain region-specific manner have not been established. In this study, we tested for the effects of repetitive transcranial magnetic stimulation (rTMS), a clinically used noninvasive brain stimulation technique, on microglia-mediated synaptic plasticity; 10 Hz electromagnetic stimulation triggered a release of plasticity-promoting cytokines from microglia in mouse organotypic brain tissue cultures of both sexes, while no significant changes in microglial morphology or microglia dynamics were observed. Indeed, substitution of tumor necrosis factor α (TNFα) and interleukin 6 (IL6) preserved synaptic plasticity induced by 10 Hz stimulation in the absence of microglia. Consistent with these findings, in vivo depletion of microglia abolished rTMS-induced changes in neurotransmission in the mPFC of anesthetized mice of both sexes. We conclude that rTMS affects neural excitability and plasticity by modulating the release of cytokines from microglia.SIGNIFICANCE STATEMENT Repetitive transcranial magnetic stimulation (rTMS) is a noninvasive brain stimulation technique that induces cortical plasticity. Despite its wide use in neuroscience and clinical practice (e.g., depression treatment), the cellular and molecular mechanisms of rTMS-mediated plasticity remain not well understood. Herein, we report an important role of microglia and plasticity-promoting cytokines in synaptic plasticity induced by 10 Hz rTMS in organotypic slice cultures and anesthetized mice, thereby identifying microglia-mediated synaptic adaptation as a target of rTMS-based interventions.
Insights
Repetitive transcranial magnetic stimulation (rTMS) enhances brain plasticity by influencing microglia, the brain's immune cells. This noninvasive technique stimulates cytokine release from microglia, promoting synaptic plasticity and altering neurotransmission.
Area of Science:
- Neuroscience
- Neuroimmunology
- Cellular and Molecular Biology
Background:
- Microglia are CNS immune cells regulating neural functions and implicated in brain diseases.
- Modulating microglia in a region-specific manner for therapeutic purposes remains challenging.
- Understanding the mechanisms of rTMS-induced plasticity is crucial for its clinical application.
Purpose of the Study:
- To investigate the effects of repetitive transcranial magnetic stimulation (rTMS) on microglia-mediated synaptic plasticity.
- To elucidate the role of microglia and associated cytokines in rTMS-induced neural changes.
Main Methods:
- Used 10 Hz electromagnetic stimulation on mouse organotypic brain tissue cultures.
- Administered rTMS to anesthetized mice, with and without microglia depletion.
- Measured microglial morphology, dynamics, cytokine release (TNFα, IL6), and neurotransmission.
Main Results:
- 10 Hz rTMS induced release of plasticity-promoting cytokines from microglia without altering their morphology or dynamics.
- Tumor necrosis factor α (TNFα) and interleukin 6 (IL6) substitution preserved synaptic plasticity in the absence of microglia.
- Microglia depletion abolished rTMS-induced changes in neurotransmission in the mouse medial prefrontal cortex (mPFC).
Conclusions:
- rTMS modulates neural excitability and plasticity through the release of cytokines from microglia.
- Microglia-mediated synaptic adaptation is a key mechanism underlying 10 Hz rTMS effects.
- Identifies microglia as a potential therapeutic target for rTMS interventions.

