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Ablation of Ca(V)2.1 voltage-gated Ca²⁺ channels in mouse forebrain generates multiple cognitive impairments
Robert Theodor Mallmann1, Claudio Elgueta, Faten Sleman
1Institut für Experimentelle und Klinische Pharmakologie und Toxikologie, Albert-Ludwigs-Universität, Freiburg, Germany ; Fakultät für Biologie, Albert-Ludwigs-Universität, Freiburg, Germany.
Abstract:
Voltage-gated Ca(V)2.1 (P/Q-type) Ca²⁺ channels located at the presynaptic membrane are known to control a multitude of Ca²⁺-dependent cellular processes such as neurotransmitter release and synaptic plasticity. Our knowledge about their contributions to complex cognitive functions, however, is restricted by the limited adequacy of existing transgenic Ca(V)2.1 mouse models. Global Ca(V)2.1 knock-out mice lacking the α1 subunit Cacna1a gene product exhibit early postnatal lethality which makes them unsuitable to analyse the relevance of Ca(V)2.1 Ca²⁺ channels for complex behaviour in adult mice. Consequently we established a forebrain specific Ca(V)2.1 knock-out model by crossing mice with a floxed Cacna1a gene with mice expressing Cre-recombinase under the control of the NEX promoter. This novel mouse model enabled us to investigate the contribution of Ca(V)2.1 to complex cognitive functions, particularly learning and memory. Electrophysiological analysis allowed us to test the specificity of our conditional knock-out model and revealed an impaired synaptic transmission at hippocampal glutamatergic synapses. At the behavioural level, the forebrain-specific Ca(V)2.1 knock-out resulted in deficits in spatial learning and reference memory, reduced recognition memory, increased exploratory behaviour and a strong attenuation of circadian rhythmicity. In summary, we present a novel conditional Ca(V)2.1 knock-out model that is most suitable for analysing the in vivo functions of Ca(V)2.1 in the adult murine forebrain.
Insights
We developed a forebrain-specific knockout mouse model lacking voltage-gated Ca(V)2.1 calcium channels. This model reveals Ca(V)2.1 channels are crucial for learning, memory, and circadian rhythms in adult mice.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Voltage-gated Ca(V)2.1 (P/Q-type) calcium channels regulate neurotransmitter release and synaptic plasticity.
- Existing global Ca(V)2.1 knockout mouse models are unsuitable for studying adult cognitive functions due to early lethality.
Purpose of the Study:
- To establish and validate a novel forebrain-specific Ca(V)2.1 knockout mouse model.
- To investigate the role of Ca(V)2.1 channels in complex cognitive functions, including learning and memory, in adult mice.
Main Methods:
- Generated a conditional knockout mouse model by crossing mice with a floxed Cacna1a gene with NEX-Cre mice.
- Performed electrophysiological analyses to assess synaptic transmission.
- Conducted behavioral tests to evaluate learning, memory, exploratory behavior, and circadian rhythmicity.
Main Results:
- The forebrain-specific knockout model demonstrated impaired synaptic transmission at hippocampal glutamatergic synapses.
- Mice exhibited deficits in spatial learning, reference memory, and recognition memory.
- Increased exploratory behavior and attenuated circadian rhythmicity were observed.
Conclusions:
- The novel conditional Ca(V)2.1 knockout mouse model is suitable for in vivo studies of Ca(V)2.1 channel function in the adult murine forebrain.
- Ca(V)2.1 channels play a significant role in regulating learning, memory, and circadian rhythms.
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