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Predominant functional expression of Kv1.3 by activated microglia of the hippocampus after Status epilepticus
Alexis Menteyne1, Françoise Levavasseur, Etienne Audinat
1Institut National de la Santé et de la Recherche Médicale, Unité 603, Paris, France.
Background:
Growing evidence indicates that the functional state of microglial cells differs according to the pathological conditions that trigger their activation. In particular, activated microglial cells can express sets of Kv subunits which sustain delayed rectifying potassium currents (Kdr) and modulate differently microglia proliferation and ability to release mediators. We recently reported that hippocampal microglia is in a particular activation state after a status epilepticus (SE) and the present study aimed at identifying which of the Kv channels are functionally expressed by microglia in this model.
Methodology/Principal Findings:
SE was induced by systemic injection of kainate in CX3CR1(eGFP/+) mice and whole cell recordings of fluorescent microglia were performed in acute hippocampal slices prepared 48 h after SE. Microglia expressed Kdr currents which were characterized by a potential of half-maximal activation near -25 mV, prominent steady-state and cumulative inactivations. Kdr currents were almost abolished by the broad spectrum antagonist 4-Aminopyridine (1 mM). In contrast, tetraethylammonium (TEA) at a concentration of 1 mM, known to block Kv3.1, Kv1.1 and 1.2 subunits, only weakly reduced Kdr currents. However, at a concentration of 5 mM which should also affect Kv1.3 and 1.6, TEA inhibited about 30% of the Kdr conductance. Alpha-dendrotoxin, which selectively inhibits Kv1.1, 1.2 and 1.6, reduced only weakly Kdr currents, indicating that channels formed by homomeric assemblies of these subunits are not important contributors of Kdr currents. Finally, agitoxin-2 and margatoxin strongly inhibited the current.
Conclusions/Significance:
These results indicate that Kv1.3 containing channels predominantly determined Kdr currents in activated microglia after SE.
Insights
Activated microglia after seizures primarily use Kv1.3 channels for delayed rectifying potassium currents (Kdr). This finding is crucial for understanding microglial function in neurological conditions like epilepsy.
Area of Science:
- Neuroscience
- Cell Biology
- Immunology
Background:
- Microglial cells exhibit diverse functional states based on pathological triggers.
- Kv channel subunits influence microglial proliferation and mediator release.
- Hippocampal microglia show a distinct activation state post-status epilepticus (SE).
Purpose of the Study:
- Identify functionally expressed Kv channels in microglia following SE.
- Characterize the delayed rectifying potassium currents (Kdr) in activated microglia.
- Determine the specific Kv channel subunits responsible for Kdr in this model.
Main Methods:
- Whole-cell recordings of fluorescent microglia in acute hippocampal slices from CX3CR1(eGFP/+) mice 48h after kainate-induced SE.
- Application of specific Kv channel blockers: 4-Aminopyridine, tetraethylammonium (TEA), alpha-dendrotoxin, agitoxin-2, and margatoxin.
Main Results:
- Microglia exhibited Kdr currents with specific activation and inactivation properties.
- 4-Aminopyridine largely abolished Kdr currents.
- TEA and alpha-dendrotoxin showed partial inhibition, suggesting Kv1.3 and Kv1.6 involvement.
- Agitoxin-2 and margatoxin strongly inhibited Kdr currents.
Conclusions:
- Kv1.3-containing channels are the predominant determinants of Kdr currents in microglia activated after SE.
- This highlights Kv1.3 as a key target for modulating microglial function in epilepsy.
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