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Functional and Structural Impairments in the Perirhinal Cortex of a Mouse Model of CDKL5 Deficiency Disorder Are
Elisa Ren1, Vincenzo Roncacé2, Stefania Trazzi1
1Department of Biomedical and Neuromotor Sciences, University of Bologna, Bologna, Italy.
Abstract:
Cyclin-dependent kinase-like 5 (CDKL5) deficiency disorder (CDD) is a severe X-linked neurodevelopmental encephalopathy caused by mutations in the CDKL5 gene and characterized by early-onset epilepsy and intellectual and motor impairments. No cure is currently available for CDD patients, as limited knowledge of the pathology has hindered the development of therapeutics. Cdkl5 knockout (KO) mouse models, recently created to investigate the role of CDKL5 in the etiology of CDD, recapitulate various features of the disorder. Previous studies have shown alterations in synaptic plasticity and dendritic pattern in the cerebral cortex and in the hippocampus, but the knowledge of the molecular substrates underlying these alterations is still limited. Here, we have examined for the first time synaptic function and plasticity, dendritic morphology, and signal transduction pathways in the perirhinal cortex (PRC) of this mouse model. Being interconnected with a wide range of cortical and subcortical structures and involved in various cognitive processes, PRC provides a very interesting framework for examining how CDKL5 mutation leads to deficits at the synapse, circuit, and behavioral level. We found that long-term potentiation (LTP) was impaired, and that the TrkB/PLCγ1 pathway could be mechanistically involved in this alteration. PRC neurons in mutant mice showed a reduction in dendritic length, dendritic branches, PSD-95-positive puncta, GluA2-AMPA receptor levels, and spine density and maturation. These functional and structural deficits were associated with impairment in visual recognition memory. Interestingly, an in vivo treatment with a TrkB agonist (the 7,8-DHF prodrug R13) to trigger the TrkB/PLCγ1 pathway rescued defective LTP, dendritic pattern, PSD-95 and GluA2-AMPA receptor levels, and restored visual recognition memory in Cdkl5 KO mice. Present findings demonstrate a critical role of TrkB signaling in the synaptic development alterations due to CDKL5 mutation, and suggest the possibility of TrkB-targeted pharmacological interventions.
Insights
Cyclin-dependent kinase-like 5 (CDKL5) deficiency disorder impairs brain function. Targeting the TrkB/PLCγ1 pathway with a TrkB agonist restored synaptic plasticity and memory in a mouse model, offering therapeutic potential.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Cyclin-dependent kinase-like 5 (CDKL5) deficiency disorder (CDD) is a severe neurodevelopmental encephalopathy with no current cure.
- Existing Cdkl5 knockout (KO) mouse models exhibit features of CDD, but molecular mechanisms underlying synaptic and dendritic alterations remain unclear.
- The perirhinal cortex (PRC), crucial for cognitive functions, has not been previously studied in Cdkl5 KO mice.
Purpose of the Study:
- To investigate synaptic function, plasticity, dendritic morphology, and signal transduction pathways in the PRC of Cdkl5 KO mice.
- To explore the role of the TrkB/PLCγ1 pathway in CDD-related synaptic alterations.
- To evaluate the therapeutic potential of TrkB pathway activation for CDD.
Main Methods:
- Electrophysiological recordings to assess long-term potentiation (LTP) in the PRC of Cdkl5 KO mice and wild-type littermates.
- Analysis of dendritic morphology, spine density, and levels of synaptic proteins (PSD-95, GluA2-AMPA receptor) using microscopy and Western blotting.
- Behavioral testing for visual recognition memory.
- In vivo treatment with a TrkB agonist (R13) to assess rescue effects on synaptic and behavioral deficits.
Main Results:
- Impaired LTP and deficits in dendritic length, branching, spine density, and PSD-95/GluA2-AMPA receptor levels were observed in the PRC of Cdkl5 KO mice.
- These structural and functional deficits correlated with impaired visual recognition memory.
- In vivo treatment with the TrkB agonist R13 rescued LTP, normalized dendritic morphology and synaptic protein levels, and restored visual recognition memory.
Conclusions:
- The TrkB/PLCγ1 pathway is critically involved in synaptic development alterations in CDD.
- TrkB signaling plays a vital role in maintaining synaptic plasticity and cognitive function in the context of CDKL5 deficiency.
- TrkB-targeted pharmacological interventions represent a promising therapeutic strategy for CDD.
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