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Recording Spatially Restricted Oscillations in the Hippocampus of Behaving Mice
Published on: July 1, 2018
Altered Hippocampal Activation in Seizure-Prone CACNA2D2 Knock-out Mice
Alyssa B Danis1,2, Ashlynn A Gallagher1,2, Ashley N Anderson1,2
1Department of Anesthesiology and Perioperative Medicine, Oregon Health & Science University, Portland, Oregon 97239.
Abstract:
The voltage-gated calcium channel subunit α2δ-2 controls calcium-dependent signaling in neurons, and loss of this subunit causes epilepsy in both mice and humans. To determine whether mice without α2δ-2 demonstrate hippocampal activation or histopathological changes associated with seizure activity, we measured expression of the activity-dependent gene c-fos and various histopathological correlates of temporal lobe epilepsy (TLE) in hippocampal tissue from wild-type (WT) and α2δ-2 knock-out (CACNA2D2 KO) mice using immunohistochemical staining and confocal microscopy. Both genotypes demonstrated similarly sparse c-fos and ΔFosB expressions within the hippocampal dentate granule cell layer (GCL) at baseline, consistent with no difference in basal activity of granule cells between genotypes. Surprisingly, when mice were assayed 1 h after handling-associated convulsions, KO mice had fewer c-fos-positive cells but dramatically increased ΔFosB expression in the dentate gyrus compared with WT mice. After administration of a subthreshold pentylenetetrazol dose, however, KO mice dentate had significantly more c-fos expression compared with WT mice. Other histopathological markers of TLE in these mice, including markers of neurogenesis, glial activation, and mossy fiber sprouting, were similar between WT and KO mice, apart from a small but statistically significant increase in hilar mossy cell density, opposite to what is typically found in mice with TLE. This suggests that the differences in seizure-associated dentate gyrus function in the absence of α2δ-2 protein are likely due to altered functional properties of the network without associated structural changes in the hippocampus at the typical age of seizure onset.
Insights
Mice lacking the α2δ-2 calcium channel subunit show altered hippocampal activity after seizures, with different gene expression patterns but no typical temporal lobe epilepsy pathology. This suggests functional network changes, not structural ones, contribute to epilepsy in these mice.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- The voltage-gated calcium channel subunit α2δ-2 (encoded by CACNA2D2) is crucial for calcium signaling in neurons.
- Loss of α2δ-2 function is linked to epilepsy in both mice and humans.
- Understanding hippocampal changes in α2δ-2 deficient mice is key to epilepsy research.
Purpose of the Study:
- To investigate hippocampal activation and histopathological changes in α2δ-2 knock-out (KO) mice.
- To compare c-fos and ΔFosB expression, as well as TLE markers, between wild-type (WT) and KO mice.
Main Methods:
- Immunohistochemical staining and confocal microscopy were used on hippocampal tissue from WT and CACNA2D2 KO mice.
- Expression of activity-dependent genes (c-fos, ΔFosB) was measured.
- Histopathological markers of temporal lobe epilepsy (TLE), including neurogenesis, glial activation, and mossy fiber sprouting, were assessed.
Main Results:
- Baseline c-fos and ΔFosB expression in the dentate granule cell layer (GCL) was similar between WT and KO mice.
- After handling-induced convulsions, KO mice showed reduced c-fos but increased ΔFosB in the dentate gyrus compared to WT.
- KO mice exhibited increased c-fos expression after a subthreshold pentylenetetrazol (PTZ) dose, unlike WT mice.
- Histopathological markers for TLE were largely similar, with a minor increase in hilar mossy cell density in KO mice, contrary to typical TLE findings.
Conclusions:
- Absence of α2δ-2 protein leads to altered seizure-associated dentate gyrus function.
- These functional differences appear to stem from altered network properties rather than structural hippocampal changes.
- The findings suggest a novel mechanism contributing to epilepsy in the absence of α2δ-2.

