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Primary Microglia Isolation from Mixed Glial Cell Cultures of Neonatal Rat Brain Tissue
Published on: August 15, 2012
GABAergic activities enhance macrophage inflammatory protein-1alpha release from microglia (brain macrophages) in
Giselle Cheung1, Oliver Kann, Shinichi Kohsaka
1Cellular Neurosciences, Max-Delbrueck-Center for Molecular Medicine, Berlin, Germany.
Abstract:
Microglial cells (brain macrophages) invade the brain during embryonic and early postnatal development, migrate preferentially along fibre tracts to their final position and transform from an amoeboid to a ramified morphology. Signals by which the invading microglia communicate with other brain cells are largely unknown. Here, we studied amoeboid microglia in postnatal corpus callosum obtained from 6- to 8-day-old mice. These cells accumulated on the surface of acute brain slices. Whole-cell patch-clamp recordings revealed that the specific GABA(A) receptor agonist muscimol triggered a transient increase in conductance typical for inward rectifying potassium channels in microglia. This current increase was not mediated by microglial GABA(A) receptors since microglial cells removed from the slice surface no longer reacted and cultured microglia only responded when a brain slice was placed in their close vicinity. Muscimol triggered a transient increase in extracellular potassium concentration ([K(+)](o)) in brain slices and an experimental elevation of [K(+)](o) mimicked the muscimol response in microglial cells. Moreover, in adult brain slices, muscimol led only to a minute increase in [K(+)](o) and microglial cells failed to respond to muscimol. In turn, an increase in [K(+)](o) stimulated the release of chemokine macrophage inflammatory protein-1alpha (MIP1-alpha) from brain slices and from cultures of microglia but not astrocytes. Our observations indicate that invading microglia in early postnatal development sense GABAergic activities indirectly via sensing changes in [K(+)](o) which results in an increase in MIP1-alpha release.
Insights
Developing brain microglia sense neuronal activity indirectly. They detect changes in extracellular potassium, not GABA directly, prompting the release of macrophage inflammatory protein-1alpha (MIP1-alpha).
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Microglial cells, the brain's resident macrophages, are crucial during development.
- Their communication signals with other brain cells remain largely unknown.
- Microglia migrate and change morphology during early brain development.
Purpose of the Study:
- To investigate how amoeboid microglia in the early postnatal brain communicate.
- To understand the signals that influence microglial behavior and function.
- To explore the role of GABAergic activity in microglial responses.
Main Methods:
- Whole-cell patch-clamp recordings on microglia from postnatal mouse corpus callosum.
- Application of GABA(A) receptor agonist muscimol to acute brain slices.
- Measurement of extracellular potassium concentration ([K(+)](o)) changes.
- Assessing macrophage inflammatory protein-1alpha (MIP1-alpha) release.
Main Results:
- Muscimol induced a potassium current in microglia, dependent on the presence of brain slices.
- Muscimol increased [K(+)](o) in slices, and elevated [K(+)](o) mimicked the muscimol response.
- Microglia responded to [K(+)](o) elevation, but not directly to muscimol when isolated.
- Increased [K(+)](o) stimulated MIP1-alpha release from microglia.
Conclusions:
- Developing microglia sense GABAergic activity indirectly through changes in extracellular potassium.
- This mechanism regulates microglial responses, including MIP1-alpha release.
- This indirect sensing is specific to early developmental stages.
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