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Abnormal excitability and episodic low-frequency oscillations in the cerebral cortex of the tottering mouse
Samuel W Cramer1, Laurentiu S Popa1, Russell E Carter1
1Department of Neuroscience, University of Minnesota, Minneapolis, Minnesota 55455.
Abstract:
The Ca(2+) channelopathies caused by mutations of the CACNA1A gene that encodes the pore-forming subunit of the human Cav2.1 (P/Q-type) voltage-gated Ca(2+) channel include episodic ataxia type 2 (EA2). Although, in EA2 the emphasis has been on cerebellar dysfunction, patients also exhibit episodic, nonmotoric abnormalities involving the cerebral cortex. This study demonstrates episodic, low-frequency oscillations (LFOs) throughout the cerebral cortex of tottering (tg/tg) mice, a widely used model of EA2. Ranging between 0.035 and 0.11 Hz, the LFOs in tg/tg mice can spontaneously develop very high power, referred to as a high-power state. The LFOs in tg/tg mice are mediated in part by neuronal activity as tetrodotoxin decreases the oscillations and cortical neuron discharge contain the same low frequencies. The high-power state involves compensatory mechanisms because acutely decreasing P/Q-type Ca(2+) channel function in either wild-type (WT) or tg/tg mice does not induce the high-power state. In contrast, blocking l-type Ca(2+) channels, known to be upregulated in tg/tg mice, reduces the high-power state. Intriguingly, basal excitatory glutamatergic neurotransmission constrains the high-power state because blocking ionotropic or metabotropic glutamate receptors results in high-power LFOs in tg/tg but not WT mice. The high-power LFOs are decreased markedly by acetazolamide and 4-aminopyridine, the primary treatments for EA2, suggesting disease relevance. Together, these results demonstrate that the high-power LFOs in the tg/tg cerebral cortex represent a highly abnormal excitability state that may underlie noncerebellar symptoms that characterize CACNA1A mutations.
Insights
Mutations in the CACNA1A gene cause episodic ataxia type 2 (EA2). This study reveals abnormal brainwave oscillations in the cerebral cortex of EA2 model mice, potentially explaining non-cerebellar symptoms.
Area of Science:
- Neuroscience
- Genetics
- Channelopathies
Background:
- Episodic ataxia type 2 (EA2) is linked to CACNA1A gene mutations affecting Cav2.1 channels.
- EA2 is primarily associated with cerebellar dysfunction, but cerebral cortex abnormalities also occur.
Purpose of the Study:
- To investigate episodic, low-frequency oscillations (LFOs) in the cerebral cortex of tottering (tg/tg) mice, a model for EA2.
- To explore the mechanisms underlying a high-power state of these LFOs and their relevance to EA2.
Main Methods:
- Recorded LFOs in the cerebral cortex of tg/tg and wild-type (WT) mice.
- Administered tetrodotoxin, blockers of P/Q-type and L-type Ca(2+) channels, and glutamate receptor antagonists.
- Tested the effects of acetazolamide and 4-aminopyridine on LFOs.
Main Results:
- tg/tg mice exhibited episodic LFOs (0.035–0.11 Hz) that could enter a high-power state.
- LFOs were partly mediated by neuronal activity and influenced by Ca(2+) channel function.
- Blocking L-type Ca(2+) channels reduced the high-power state, while blocking glutamate receptors induced it in tg/tg mice.
- Acetazolamide and 4-aminopyridine significantly decreased high-power LFOs.
Conclusions:
- The high-power LFOs in the tg/tg mouse cerebral cortex represent an abnormal excitability state.
- These oscillations may contribute to the non-cerebellar symptoms observed in EA2 patients with CACNA1A mutations.

