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Updated: Jan 28, 2026

Recording Gamma Band Oscillations in Pedunculopontine Nucleus Neurons
Published on: September 14, 2016
Priming of microglia with IFN-γ slows neuronal gamma oscillations in situ
Thuy-Truc Ta1, Hasan Onur Dikmen1, Simone Schilling1
1Institute of Physiology and Pathophysiology, University of Heidelberg, D-69120 Heidelberg, Germany.
Abstract:
Type II IFN (IFN-γ) is a proinflammatory T lymphocyte cytokine that serves in priming of microglia-resident CNS macrophages-during the complex microglial activation process under pathological conditions. Priming generally permits an exaggerated microglial response to a secondary inflammatory stimulus. The impact of primed microglia on physiological neuronal function in intact cortical tissue (in situ) is widely unknown, however. We explored the effects of chronic IFN-γ exposure on microglia in hippocampal slice cultures, i.e., postnatal parenchyma lacking leukocyte infiltration (adaptive immunity). We focused on fast neuronal network waves in the gamma-band (30-70 Hz). Such gamma oscillations are fundamental to higher brain functions, such as perception, attention, and memory, and are exquisitely sensitive to metabolic and oxidative stress. IFN-γ induced substantial morphological changes and cell population expansion in microglia as well as moderate up-regulation of activation markers, MHC-II, CD86, IL-6, and inducible nitric oxide synthase (iNOS), but not TNF-α. Cytoarchitecture and morphology of pyramidal neurons and parvalbumin-positive inhibitory interneurons were well-preserved. Notably, gamma oscillations showed a specific decline in frequency of up to 8 Hz, which was not mimicked by IFN-α or IL-17 exposure. The rhythm disturbance was caused by moderate microglial nitric oxide (NO) release demonstrated by pharmacological microglia depletion and iNOS inhibition. In conclusion, IFN-γ priming induces substantial proliferation and moderate activation of microglia that is capable of slowing neural information processing. This mechanism might contribute to cognitive impairment in chronic brain disease featuring elevated IFN-γ levels, blood-brain barrier leakage, and/or T cell infiltration, well before neurodegeneration occurs.
Insights
Interferon-gamma (IFN-γ) primes microglia, leading to nitric oxide release that slows neural network oscillations. This microglial priming may contribute to cognitive impairment in chronic brain diseases.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Type II Interferon (IFN-γ) is a proinflammatory cytokine involved in microglial activation during pathological conditions.
- Primed microglia exhibit an exaggerated response to secondary inflammatory stimuli, but their impact on neuronal function in intact tissue is largely unknown.
Purpose of the Study:
- To investigate the effects of chronic IFN-γ exposure on microglia and neuronal network activity in hippocampal slice cultures.
- To determine the role of microglial nitric oxide (NO) release in modulating gamma oscillations.
Main Methods:
- Exposure of hippocampal slice cultures to IFN-γ.
- Analysis of microglial morphology, activation markers (MHC-II, CD86, IL-6, iNOS), and neuronal cytoarchitecture.
- Measurement of gamma oscillations (30-70 Hz) and assessment of NO release.
- Pharmacological microglia depletion and iNOS inhibition.
Main Results:
- IFN-γ induced microglial proliferation, morphological changes, and moderate activation (up-regulation of MHC-II, CD86, IL-6, iNOS).
- Gamma oscillations showed a specific decline in frequency, linked to microglial NO release.
- Neuronal cytoarchitecture and morphology remained preserved.
Conclusions:
- IFN-γ priming of microglia leads to moderate activation and NO release, capable of slowing neural information processing.
- This mechanism may contribute to cognitive impairment in chronic brain diseases with elevated IFN-γ levels before neurodegeneration occurs.
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