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AMPA Receptor Dysregulation and Therapeutic Interventions in a Mouse Model of CDKL5 Deficiency Disorder
Madhumita Yennawar1, Rachel S White2, Frances E Jensen3
1Department of Systems Pharmacology and Translational Therapeutics, and.
Abstract:
Pathogenic mutations in cyclin-dependent kinase-like 5 (CDKL5) result in CDKL5 deficiency disorder (CDD), a rare disease marked by early-life seizures, autistic behaviors, and intellectual disability. Although mouse models of CDD exhibit dendritic instability and alterations in synaptic scaffolding proteins, studies of glutamate receptor levels and function are limited. Here we used a novel mouse model of CDD, the Cdkl5 knock-in mouse (R59X), to investigate changes in synaptic glutamate receptor subunits and functional consequences. Male mice were used for all experiments to avoid the confounding effects of X-inactivation that would be present in female heterozygous mice. We showed that adult male R59X mice recapitulated the behavioral outcomes observed in other mouse models of CDD, including social deficits and memory and learning impairments, and exhibited decreased latency to seizure upon pentylenetetrazol administration. Furthermore, we observed a specific increase in GluA2-lacking α-amino-3-hydroxy-5-methyl-4-isoxazolepropionic acid)-type glutamate receptors (AMPARs) in the adult R59X hippocampus, which is accompanied electrophysiologically by increased rectification ratio of AMPAR EPSCs and elevated early-phase long term potentiation (LTP). Finally, we showed that acute treatment with the GluA2-lacking AMPAR blocker IEM-1460 decreased AMPAR currents, and rescued social deficits, working memory impairments, and seizure behavior latency in R59X mice.SIGNIFICANCE STATEMENT CDKL5 deficiency disorder (CDD) is a rare disease marked by autistic-like behaviors, intellectual disability, and seizures. While synaptic dysfunction has been observed in mouse models of CDD, there is limited information on how synaptic alterations contribute to behavioral and functional changes in CDD. Here we reveal elevated hippocampal GluA2-lacking AMPAR expression in a novel mouse model of CDD that is accompanied by changes in synaptic AMPAR function and plasticity. We also show, for the first time, that acutely targeting GluA2-lacking AMPAR dysregulation rescues core synaptic and neurobehavioral deficits in CDD.
Insights
Pathogenic mutations in cyclin-dependent kinase-like 5 (CDKL5) cause CDKL5 deficiency disorder (CDD). This study found elevated GluA2-lacking AMPARs in a CDD mouse model, and targeting these receptors rescued core neurobehavioral deficits.
Area of Science:
- Neuroscience
- Genetics
- Molecular Biology
Background:
- CDKL5 deficiency disorder (CDD) is a severe neurodevelopmental disorder caused by mutations in the CDKL5 gene.
- Existing CDD mouse models show synaptic instability, but glutamate receptor function remains understudied.
- Understanding synaptic alterations is crucial for developing targeted therapies for CDD.
Purpose of the Study:
- To investigate synaptic glutamate receptor changes in a novel CDKL5 knock-in mouse model (R59X).
- To determine the functional consequences of these synaptic alterations on neurobehavioral outcomes.
- To evaluate the therapeutic potential of targeting GluA2-lacking AMPARs in CDD.
Main Methods:
- Utilized a novel Cdkl5 R59X knock-in mouse model.
- Performed behavioral testing, electrophysiology, and pharmacological interventions.
- Focused on male mice to avoid X-inactivation confounding effects.
Main Results:
- R59X mice exhibited CDD-like behaviors including social deficits, learning impairments, and seizures.
- Increased expression of GluA2-lacking AMPARs was observed in the hippocampus of R59X mice.
- Electrophysiological studies revealed altered AMPAR function and enhanced long-term potentiation (LTP).
- Acute treatment with a GluA2-lacking AMPAR blocker (IEM-1460) rescued behavioral and seizure deficits.
Conclusions:
- Elevated hippocampal GluA2-lacking AMPARs are a key synaptic feature in this CDD mouse model.
- These receptor alterations contribute to synaptic dysfunction and core neurobehavioral deficits in CDD.
- Targeting GluA2-lacking AMPARs represents a promising therapeutic strategy for CDD.
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