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Published on: March 8, 2015
CDKL5 Deficiency Augments Inhibitory Input into the Dentate Gyrus That Can Be Reversed by Deep Brain Stimulation
Shuang Hao1,2, Qi Wang1,2, Bin Tang1,2
1Jan and Dan Duncan Neurological Research Institute, Texas Children's Hospital, Houston, Texas 77030.
Abstract:
Cognitive impairment is a core feature of cyclin-dependent kinase-like 5 (CDKL5) deficiency, a neurodevelopmental disorder characterized by early epileptic seizures, intellectual disability, and autistic behaviors. Although loss of CDKL5 affects a number of molecular pathways, very little has been discovered about the physiological effects of these changes on the neural circuitry. We therefore studied synaptic plasticity and local circuit activity in the dentate gyrus of both Cdkl5-/ and Cdkl5+/- mutant mice. We found that CDKL5 haploinsufficiency in both male and female mice impairs hippocampus-dependent learning and memory in multiple tasks. In vivo, loss of CDKL5 reduced LTP of the perforant path to the dentate gyrus and augmented feedforward inhibition in this pathway; ex vivo experiments confirmed that excitatory/inhibitory input into the dentate gyrus is skewed toward inhibition. Injecting the GABAergic antagonist gabazine into the dentate improved contextual fear memory in Cdkl5-/ mice. Finally, chronic forniceal deep brain stimulation rescued hippocampal memory deficits, restored synaptic plasticity, and relieved feedforward inhibition in Cdkl5+/- mice. These results indicate that CDKL5 is important for maintaining proper dentate excitatory/inhibitory balance, with consequences for hippocampal memory.SIGNIFICANCE STATEMENT Cognitive impairment is a core feature of cyclin-dependent kinase-like 5 (CDKL5) deficiency disorder. Although CDKL5 deficiency has been found to affect a number of molecular pathways, little is known about its physiological effects on the neural circuitry. We find that CDKL5 loss reduces hippocampal synaptic plasticity and augments feedforward inhibition in the perforant path to the dentate gyrus in vivo in Cdkl5 mutant mice. Chronic forniceal deep brain stimulation rescued hippocampal memory deficits, restored synaptic plasticity, and relieved feedforward inhibition in Cdkl5+/- mice, as it had previously done with Rett syndrome mice, suggesting that such stimulation may be useful for other neurodevelopmental disorders.
Insights
Cyclin-dependent kinase-like 5 (CDKL5) deficiency impairs hippocampus-dependent memory by disrupting neural circuit balance. Deep brain stimulation may offer a therapeutic strategy for this neurodevelopmental disorder.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Cognitive impairment is a key feature of CDKL5 deficiency disorder.
- The neural circuit effects of CDKL5 loss remain largely unknown.
- CDKL5 plays a role in neurodevelopmental processes.
Purpose of the Study:
- Investigate the impact of CDKL5 deficiency on synaptic plasticity and neural circuitry.
- Determine the role of CDKL5 in hippocampus-dependent learning and memory.
- Explore potential therapeutic interventions for CDKL5-related cognitive deficits.
Main Methods:
- Studied synaptic plasticity and local circuit activity in the dentate gyrus of Cdkl5 mutant mice (Cdkl5-/- and Cdkl5+/-).
- Assessed hippocampus-dependent learning and memory using multiple behavioral tasks.
- Utilized in vivo and ex vivo electrophysiological recordings.
- Administered gabazine (GABAergic antagonist) and employed forniceal deep brain stimulation.
Main Results:
- CDKL5 haploinsufficiency impaired hippocampus-dependent learning and memory in both male and female mice.
- Loss of CDKL5 reduced long-term potentiation (LTP) and augmented feedforward inhibition in the perforant path to the dentate gyrus.
- Excitatory/inhibitory input to the dentate gyrus was skewed toward inhibition.
- Gabazine injection improved contextual fear memory in Cdkl5-/- mice.
- Forniceal deep brain stimulation rescued memory deficits, restored synaptic plasticity, and relieved feedforward inhibition in Cdkl5+/- mice.
Conclusions:
- CDKL5 is crucial for maintaining the excitatory/inhibitory balance in the dentate gyrus.
- Imbalances in this circuit contribute to cognitive deficits in CDKL5 deficiency disorder.
- Forniceal deep brain stimulation shows promise as a therapeutic approach for CDKL5 deficiency and potentially other neurodevelopmental disorders.

