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Time-lapse Confocal Imaging of Migrating Neurons in Organotypic Slice Culture of Embryonic Mouse Brain Using In Utero Electroporation
Published on: July 25, 2017
Involvement of Calcium-Dependent Pathway and β Subunit-Interaction in Neuronal Migration and Callosal Projection
Nao Nakagawa-Tamagawa1,2, Emi Kirino1, Kohtaroh Sugao3
1Department of Physiology, Graduate School of Medical and Dental Sciences, Kagoshima University, Kagoshima, Japan.
Abstract:
Introduction: Gain-of-function mutations in the L-type Ca2+ channel Cav1.2 cause Timothy syndrome (TS), a multisystem disorder associated with neurologic symptoms, including autism spectrum disorder (ASD), seizures, and intellectual disability. Cav1.2 plays key roles in neural development, and its mutation can affect brain development and connectivity through Ca2+-dependent and -independent mechanisms. Recently, a gain-of-function mutation, I1166T, in Cav1.2 was identified in patients with TS-like disorder. Its channel properties have been analyzed in vitro but in vivo effects of this mutation on brain development remain unexplored. Methods: In utero electroporation was performed on ICR mice at embryonic day 15 to express GFP, wild-type, and mutant Cav1.2 channels into cortical layer 2/3 excitatory neurons in the primary somatosensory area. The brain was fixed at postnatal days 14-16, sliced, and scanned using confocal microscopy. Neuronal migration of electroporated neurons was examined in the cortex of the electroporated hemisphere, and callosal projection was examined in the white matter and contralateral hemisphere. Results: Expression of the I1166T mutant in layer 2/3 neurons caused migration deficits in approximately 20% of electroporated neurons and almost completely diminished axonal arborization in the contralateral hemisphere. Axonal projection in the white matter was not affected. We introduced second mutations onto Cav1.2 I1166T; L745P mutation blocks Ca2+ influx through Cav1.2 channels and inhibits the Ca2+-dependent pathway, and the W440A mutation blocks the interaction of the Cav1.2 α1 subunit to the β subunit. Both second mutations recovered migration and projection. Conclusion: This study demonstrated that the Cav1.2 I1166T mutation could affect two critical steps during cerebrocortical development, migration and axonal projection, in the mouse brain. This is mediated through Ca2+-dependent pathway downstream of Cav1.2 and β subunit-interaction.
Insights
Gain-of-function mutations in the Cav1.2 channel, like I1166T, disrupt brain development. This study shows the I1166T mutation impairs neuronal migration and axonal projection in mice, mediated by calcium-dependent pathways.
Area of Science:
- Neuroscience
- Molecular Biology
- Developmental Biology
Background:
- Gain-of-function mutations in the L-type calcium channel Cav1.2 cause Timothy syndrome (TS), a disorder with neurological symptoms like autism spectrum disorder.
- Cav1.2 channels are crucial for neural development, and mutations can impact brain development and connectivity via calcium-dependent and -independent pathways.
- The specific Cav1.2 I1166T mutation, identified in TS patients, has uncharacterized in vivo effects on brain development.
Purpose of the Study:
- To investigate the in vivo effects of the Cav1.2 I1166T gain-of-function mutation on cerebrocortical development in a mouse model.
- To elucidate the mechanisms underlying the I1166T mutation's impact on neuronal migration and axonal projection.
Main Methods:
- In utero electroporation of wild-type and I1166T mutant Cav1.2 channels into mouse cortical neurons.
- Confocal microscopy was used to analyze neuronal migration and callosal axonal projection at postnatal days 14-16.
- Second mutations (L745P and W440A) were introduced to investigate calcium-dependent and beta-subunit interaction pathways.
Main Results:
- Expression of the I1166T mutant Cav1.2 channel impaired neuronal migration in ~20% of neurons and severely reduced contralateral axonal arborization.
- Axonal projection within the white matter remained unaffected by the I1166T mutation.
- Introducing mutations that blocked calcium influx (L745P) or beta-subunit interaction (W440A) rescued both migration and projection deficits.
Conclusions:
- The Cav1.2 I1166T mutation disrupts critical cerebrocortical development steps: neuronal migration and axonal projection, in vivo.
- These developmental defects are mediated by Cav1.2's calcium-dependent downstream pathway and its interaction with the beta subunit.

