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Habituation and Prepulse Inhibition of Acoustic Startle in Rodents
Published on: September 1, 2011
Acoustic startle hypersensitivity in Mceph mice and its effect on hippocampal excitability
André Fisahn1, Catharina Lavebratt, Barbara Canlon
1Neuronal Oscillations Laboratory, KI-Alzheimer's Disease Research Center, NVS, Karolinska Institutet, Stockholm, Sweden.
Abstract:
Current therapies and research for epilepsy concentrate mainly on controlling the disease, but not on prevention of its development and progression. This is partly due to the under-appreciated heterogeneity of the different epileptic syndromes, and a lack of knowledge about the underlying mechanisms of hypersensitivity and hypersynchrony in epilepsy development and spread. In this study we investigate mechanisms underlying the increased susceptibility to acoustic startle in a mouse model homozygous for the spontaneous megencephaly (mceph) mutation, which results in a lack of the functional potassium channel Kv1.1. Mceph mice are hypersensitive to acoustic startle, a response that is not seen in the wild-type (WT) littermates. After acoustic startle, a strong activation of astrocytes, as indicated by glial fibrillary acidic protein, occurred in the inferior colliculus and hippocampus. Both the hypersensitivity of acoustic startle as well as activation of astrocytes could be maintained at WT levels by pre-treating the Mceph mice with the anti-epileptic drug valproate. Furthermore, we utilized the Mceph mouse model to investigate whether acoustic startle-induced hypersensitivity has negative consequences for synchronous neuronal activity in other, non-auditory, systems and networks in the brain, such as the hippocampus. Our findings show that acoustic startle-induced hypersensitivity primes hippocampal networks by increasing their excitability, which results in increased strength of rhythmic network activity. Our results provide novel insights into the mechanisms that underlie the spread of hypersensitivity and hypersynchrony across functionally different parts of the brain.
Insights
This study reveals how a specific mutation leads to epilepsy-like hypersensitivity in mice. Preventing astrocyte activation with valproate may offer new epilepsy prevention strategies.
Area of Science:
- Neuroscience
- Epilepsy Research
- Genetics
Background:
- Current epilepsy treatments focus on control, not prevention.
- Epileptic syndromes are heterogeneous, with poorly understood mechanisms of spread.
- Investigating genetic models is crucial for understanding epilepsy development.
Purpose of the Study:
- To investigate mechanisms of hypersensitivity and hypersynchrony in epilepsy development.
- To examine the role of the Kv1.1 potassium channel in acoustic startle response.
- To explore the impact of acoustic startle on non-auditory brain networks.
Main Methods:
- Utilized a mouse model (mceph) with a non-functional Kv1.1 potassium channel.
- Assessed acoustic startle response and astrocyte activation (GFAP) post-stimulus.
- Administered valproate to Mceph mice and evaluated its effect on hypersensitivity and astrocyte activation.
- Examined hippocampal network excitability and rhythmic activity.
Main Results:
- Mceph mice exhibited hypersensitivity to acoustic startle compared to wild-type littermates.
- Acoustic startle triggered significant astrocyte activation in the inferior colliculus and hippocampus.
- Valproate treatment normalized acoustic startle hypersensitivity and astrocyte activation.
- Acoustic startle primed hippocampal networks, increasing excitability and rhythmic activity.
Conclusions:
- Kv1.1 deficiency contributes to epilepsy-like hypersensitivity and astrocyte activation.
- Valproate demonstrates potential in mitigating epilepsy development and spread.
- Acoustic startle can induce hypersynchrony in non-auditory brain regions, highlighting cross-network effects.
