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Updated: Jan 26, 2026

Author Spotlight: In Vitro Co-Culture Model for Studying Microglia-Neuronal Interactions in Disease Conditions
Published on: July 26, 2024
Toxoplasma-Induced Hypermigration of Primary Cortical Microglia Implicates GABAergic Signaling
Amol K Bhandage1, Sachie Kanatani1, Antonio Barragan1
1Department of Molecular Biosciences, The Wenner-Gren Institute, Stockholm University, Stockholm, Sweden.
Abstract:
Toxoplasma gondii is a widespread obligate intracellular parasite that causes chronic infection and life-threatening acute infection in the central nervous system. Previous work identified Toxoplasma-infected microglia and astrocytes during reactivated infections in mice, indicating an implication of glial cells in acute toxoplasmic encephalitis. However, the mechanisms leading to the spread of Toxoplasma in the brain parenchyma remain unknown. Here, we report that, shortly after invasion by T. gondii tachyzoites, parasitized microglia, but not parasitized astrocytes, undergo rapid morphological changes and exhibit dramatically enhanced migration in 2-dimensional and 3-dimensional matrix confinements. Interestingly, primary microglia secreted the neurotransmitter γ-aminobutyric acid (GABA) in the supernatant as a consequence of T. gondii infection but not upon stimulation with LPS or heat-inactivated T. gondii. Further, microglia transcriptionally expressed components of the GABAergic machinery, including GABA-A receptor subunits, regulatory molecules and voltage-dependent calcium channels (VDCCs). Further, their transcriptional expression was modulated by challenge with T. gondii. Transcriptional analysis indicated that GABA was synthesized via both, the conventional pathway (glutamate decarboxylases GAD65 and GAD67) and a more recently characterized alternative pathway (aldehyde dehydrogenases ALDH2 and ALDH1a1). Pharmacological inhibitors targeting GABA synthesis, GABA-A receptors, GABA-A regulators and VDCC signaling inhibited Toxoplasma-induced hypermotility of microglia. Altogether, we show that primary microglia express a GABAergic machinery and that T. gondii induces hypermigration of microglia in a GABA-dependent fashion. We hypothesize that migratory activation of parasitized microglia by Toxoplasma may promote parasite dissemination in the brain parenchyma.
Insights
Toxoplasma gondii infection causes microglia to release the neurotransmitter GABA, enhancing their migration. This GABA-dependent hypermotility may facilitate parasite spread within the brain parenchyma.
Area of Science:
- Neuroimmunology
- Parasitology
- Cell Biology
Background:
- *Toxoplasma gondii* is a common parasite causing central nervous system infections.
- Glial cells, including microglia and astrocytes, are implicated in toxoplasmic encephalitis.
- Mechanisms of *Toxoplasma* spread in the brain parenchyma are not well understood.
Purpose of the Study:
- To investigate the role of microglia and astrocytes in *Toxoplasma* brain infection.
- To elucidate the mechanisms behind parasite dissemination within the brain.
- To determine if *T. gondii* infection alters glial cell migration and neurotransmitter production.
Main Methods:
- Infection of primary microglia and astrocytes with *T. gondii* tachyzoites.
- Assessment of glial cell morphology and migration in 2D and 3D matrices.
- Measurement of neurotransmitter (GABA) secretion by infected microglia.
- Transcriptional analysis of GABAergic machinery components and VDCCs in microglia.
- Pharmacological inhibition of GABA synthesis, receptors, regulators, and VDCC signaling.
Main Results:
- *T. gondii*-infected microglia, but not astrocytes, showed rapid morphological changes and enhanced migration.
- *T. gondii* infection induced primary microglia to secrete γ-aminobutyric acid (GABA).
- Microglia expressed GABAergic machinery components, including GABA-A receptors and VDCCs, modulated by *T. gondii*.
- GABA synthesis occurred via both conventional and alternative pathways.
- Inhibitors of GABA synthesis, GABA-A receptors, regulators, and VDCCs blocked *Toxoplasma*-induced microglial hypermotility.
Conclusions:
- Primary microglia possess a functional GABAergic system.
- *T. gondii* infection promotes microglial hypermigration in a GABA-dependent manner.
- Parasite-induced microglial migration may facilitate the dissemination of *Toxoplasma* in the brain parenchyma.
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