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Altered inhibition and excitation in neocortical circuits in congenital microcephaly
Sami Zaqout1, Kathrin Blaesius1, Yuan-Ju Wu2
1Charité - Universitätsmedizin Berlin, Institute of Cell- and Neurobiology, Charitéplatz 1, 10117 Berlin, Germany; Charité - Universitätsmedizin Berlin, Center for Chronically Sick Children (Sozialpädiatrisches Zentrum, SPZ), Augustenburger Platz 1, 13353 Berlin, Germany; Charité - Universitätsmedizin Berlin, Department of Pediatric Neurology, Augustenburger Platz 1, 13353 Berlin, Germany; Berlin Institute of Health (BIH), Anna-Louisa-Karsch Strasse 2, 10178 Berlin, Germany.
Abstract:
Congenital microcephaly is highly associated with intellectual disability. Features of autosomal recessive primary microcephaly subtype 3 (MCPH3) also include hyperactivity and seizures. The disease is caused by biallelic mutations in the Cyclin-dependent kinase 5 regulatory subunit-associated protein 2 gene CDK5RAP2. In the mouse, Cdk5rap2 mutations similar to the human condition result in reduced brain size and a strikingly thin neocortex already at early stages of neurogenesis that persists through adulthood. The microcephaly phenotype in MCPH arises from a neural stem cell proliferation defect. Here, we report a novel role for Cdk5rap2 in the regulation of dendritic development and synaptogenesis of neocortical layer 2/3 pyramidal neurons. Cdk5rap2-deficient murine neurons show poorly branched dendritic arbors and an increased density of immature thin spines and glutamatergic synapses in vivo. Moreover, the excitatory drive is enhanced in ex vivo brain slice preparations of Cdk5rap2 mutant mice. Concurrently, we show that pyramidal neurons receive fewer inhibitory inputs. Together, these findings point towards a shift in the excitation - inhibition balance towards excitation in Cdk5rap2 mutant mice. Thus, MCPH3 is associated not only with a neural progenitor proliferation defect but also with altered function of postmitotic neurons and hence with altered connectivity.
Insights
Mutations in CDK5RAP2 cause microcephaly (MCPH3) by impairing neural stem cell proliferation. This study reveals CDK5RAP2 also regulates neuron structure and connectivity, impacting brain function.
Area of Science:
- Neuroscience
- Genetics
- Developmental Biology
Background:
- Congenital microcephaly (MCPH) is linked to intellectual disability.
- Autosomal recessive primary microcephaly subtype 3 (MCPH3) results from CDK5RAP2 gene mutations.
- MCPH involves reduced brain size due to neural stem cell proliferation defects.
Purpose of the Study:
- Investigate the role of CDK5RAP2 in neuronal development beyond progenitor proliferation.
- Examine the impact of Cdk5rap2 deficiency on dendritic structure and synaptogenesis.
- Analyze the effects on neuronal excitation-inhibition balance in the neocortex.
Main Methods:
- Utilized Cdk5rap2-deficient mouse models.
- Analyzed dendritic arborization and spine density in neocortical neurons.
- Performed electrophysiological recordings in brain slices to assess neuronal activity.
Main Results:
- Cdk5rap2 deficiency led to impaired dendritic branching and increased immature spines.
- Mutant neurons exhibited enhanced excitatory drive and reduced inhibitory inputs.
- A shift towards excitation-inhibition imbalance was observed in Cdk5rap2 mutant mice.
Conclusions:
- CDK5RAP2 is crucial for normal dendritic development and synaptogenesis in neocortical neurons.
- MCPH3 involves both progenitor proliferation defects and altered function of mature neurons.
- Dysregulated excitation-inhibition balance contributes to the neurological deficits in MCPH3.
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