Loss of CDKL5 impairs survival and dendritic growth of newborn neurons by altering AKT/GSK-3β signaling
Loss of CDKL5 impairs survival and dendritic growth of newborn neurons by altering AKT/GSK-3β signaling
Mutations in the X-linked cyclin-dependent kinase-like 5 (CDKL5) gene have been identified in a neurodevelopmental disorder characterized by early-onset intractable seizures, severe developmental delay, intellectual disability, and Rett's syndrome-like features. Since the physiological functions of CDKL5 still need to be elucidated, in the current study we took advantage of a new Cdkl5 knockout (KO) mouse model in order to shed light on the role of this gene in brain development. We mainly focused on the hippocampal dentate gyrus, a region that largely develops postnatally and plays a key role in learning and memory. Looking at the process of neurogenesis, we found a higher proliferation rate of neural precursors in Cdkl5 KO mice in comparison with wild type mice. However, there was an increase in apoptotic cell death of postmitotic granule neuron precursors, with a reduction in total number of granule cells. Looking at dendritic development, we found that in Cdkl5 KO mice the newly-generated granule cells exhibited a severe dendritic hypotrophy. In parallel, these neurodevelopmental defects were associated with impairment of hippocampus-dependent memory. Looking at the mechanisms whereby CDKL5 exerts its functions, we identified a central role of the AKT/GSK-3β signaling pathway. Overall our findings highlight a critical role of CDKL5 in the fundamental processes of brain development, namely neuronal precursor proliferation, survival and maturation. This evidence lays the basis for a better understanding of the neurological phenotype in patients carrying mutations in the CDKL5 gene.
- Alma Mater Studiorum University of Bologna Italy
- European Molecular Biology Laboratory Germany
- European Bioinformatics Institute United Kingdom
- European Molecular Biology Laboratory Italy
Male, Cell Survival, Neurogenesis, CDKL5 disorder, Neurosciences. Biological psychiatry. Neuropsychiatry, Apoptosis, Cell Enlargement, Protein Serine-Threonine Kinases, Article, Glycogen Synthase Kinase 3, Neural Stem Cells, Rett's syndrome, Animals, Neurogenesis impairment, Dendritic development, AKT/GSK-3β signaling, Maze Learning, Cells, Cultured, Mice, Knockout, Neurons, Glycogen Synthase Kinase 3 beta, Neurodevelopmental disorders, AKT/GSK-3β, Dendrites, Neurology, Dentate Gyrus, Female, Proto-Oncogene Proteins c-akt, RC321-571, Signal Transduction
Male, Cell Survival, Neurogenesis, CDKL5 disorder, Neurosciences. Biological psychiatry. Neuropsychiatry, Apoptosis, Cell Enlargement, Protein Serine-Threonine Kinases, Article, Glycogen Synthase Kinase 3, Neural Stem Cells, Rett's syndrome, Animals, Neurogenesis impairment, Dendritic development, AKT/GSK-3β signaling, Maze Learning, Cells, Cultured, Mice, Knockout, Neurons, Glycogen Synthase Kinase 3 beta, Neurodevelopmental disorders, AKT/GSK-3β, Dendrites, Neurology, Dentate Gyrus, Female, Proto-Oncogene Proteins c-akt, RC321-571, Signal Transduction
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