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CDKL5 deficiency in forebrain glutamatergic neurons results in recurrent spontaneous seizures
Hong-Tao Wang1,2, Zi-Ai Zhu1,3, Yi-Yan Li1,3
1Institute of Neuroscience, State Key Laboratory of Neuroscience, Center for Excellence in Brain Science and Intelligence Technology, Chinese Academy of Sciences, Shanghai, China.
Objective:
Mutations of the cyclin-dependent kinase-like 5 (CDKL5) gene cause severe neurodevelopmental disorders characterized by intractable epilepsy, intellectual disability, and autism. Multiple mouse models generated for mechanistic studies have exhibited phenotypes similar to some human pathological features, but none of the models has developed one of the major symptoms affecting CDKL5 deficiency disorder (CDD) patients: intractable recurrent seizures. As disrupted neuronal excitation/inhibition balance is closely associated with the activity of glutamatergic and γ-aminobutyric acidergic (GABAergic) neurons, our aim was to study the effect of the loss of CDKL5 in different types of neurons on epilepsy.
Methods:
Using the Cre-LoxP system, we generated conditional knockout (cKO) mouse lines allowing CDKL5 deficiency in glutamatergic or GABAergic neurons. We employed noninvasive video recording and in vivo electrophysiological approaches to study seizure activity in these Cdkl5 cKO mice. Furthermore, we conducted Timm staining to confirm a morphological alteration, mossy fiber sprouting, which occurs with limbic epilepsy in both human and mouse brains. Finally, we performed whole-cell patch clamp in dentate granule cells to investigate cell-intrinsic properties and synaptic excitatory activity.
Results:
We demonstrate that Emx1- or CamK2α-derived Cdkl5 cKO mice manifest high-frequency spontaneous seizure activities recapitulating the epilepsy of CDD patients, which ultimately led to sudden death in mice. However, Cdkl5 deficiency in GABAergic neurons does not generate such seizures. The seizures were accompanied by typical epileptic features including higher amplitude spikes for epileptiform discharges and abnormal hippocampal mossy fiber sprouting. We also found an increase in spontaneous and miniature excitatory postsynaptic current frequencies but no change in amplitudes in the dentate granule cells of Emx1-cKO mice, indicating enhanced excitatory synaptic activity.
Significance:
Our study demonstrates that Cdkl5 cKO mice, serving as an animal model to study recurrent spontaneous seizures, have potential value for the pathological study of CDD-related seizures and for therapeutic innovation.
Insights
Loss of cyclin-dependent kinase-like 5 (CDKL5) in excitatory neurons causes intractable epilepsy in mice, mimicking CDKL5 deficiency disorder. This finding offers a valuable model for studying CDD-related seizures and developing new therapies.
Area of Science:
- Neuroscience
- Genetics
- Epilepsy Research
Background:
- Mutations in the cyclin-dependent kinase-like 5 (CDKL5) gene are linked to severe neurodevelopmental disorders, including intractable epilepsy, intellectual disability, and autism.
- Current mouse models for CDKL5 deficiency disorder (CDD) often fail to replicate the hallmark intractable recurrent seizures observed in human patients.
- Understanding the role of CDKL5 in specific neuronal populations is crucial for elucidating epilepsy mechanisms in CDD.
Purpose of the Study:
- To investigate the impact of CDKL5 loss in distinct neuronal types (glutamatergic vs. GABAergic) on epilepsy development.
- To establish a more accurate mouse model for studying the intractable seizures characteristic of CDD.
- To explore the underlying mechanisms of CDKL5-deficiency-related epilepsy.
Main Methods:
- Generation of conditional knockout (cKO) mouse lines using the Cre-LoxP system to induce CDKL5 deficiency specifically in glutamatergic or GABAergic neurons.
- Noninvasive video recording and in vivo electrophysiological methods to monitor and analyze seizure activity.
- Timm staining for mossy fiber sprouting and whole-cell patch clamp recordings in dentate granule cells to assess neuronal properties and synaptic function.
Main Results:
- CDKL5 deficiency in glutamatergic neurons (Emx1- or CamK2α-driven cKO) resulted in high-frequency spontaneous seizures and sudden death, mirroring human CDD epilepsy.
- CDKL5 loss in GABAergic neurons did not induce seizure activity.
- Seizures were associated with epileptiform discharges, hippocampal mossy fiber sprouting, and increased excitatory synaptic activity in dentate granule cells.
Conclusions:
- Conditional deletion of CDKL5 in excitatory neurons effectively models the intractable epilepsy of CDD.
- These CDKL5 cKO mice represent a valuable preclinical tool for investigating CDD pathophysiology and testing novel therapeutic strategies.
- Targeting excitatory neuronal dysfunction may be a key avenue for treating CDD-related epilepsy.
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