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Published on: March 12, 2013
Plural molecular and cellular mechanisms of pore domain KCNQ2 encephalopathy
Timothy J Abreo1,2, Emma C Thompson1, Anuraag Madabushi1
1Department of Neurology, Baylor College of Medicine, Houston, TX, USA.
Insights
The KCNQ2 G256W variant causes severe neurodevelopmental impairment by disrupting KCNQ2 channel function, protein stability, and cellular localization, leading to epilepsy. This study introduces a new animal model for KCNQ2 encephalopathy.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- KCNQ2 variants cause neurodevelopmental impairment with unclear mechanisms.
- The G256W variant in KCNQ2 is associated with neonatal epilepsy and developmental delay.
Purpose of the Study:
- To elucidate the pathogenic mechanisms of the KCNQ2 G256W variant.
- To characterize a novel KCNQ2 encephalopathy mouse model.
Main Methods:
- Cryoelectron microscopy analysis of KCNQ2 channel structure.
- Heterologous expression studies to assess channel function.
- Electrophysiology and immunofluorescence in G256W/+ mouse brain slices.
- Western blot analysis of KCNQ2 protein levels.
Main Results:
- The G256W variant disrupts KCNQ2 channel structure and function, suppressing wild-type conduction.
- G256W/+ mice exhibit epilepsy, hyperexcitability, and altered KCNQ2/KCNQ3 localization.
- KCNQ2 protein levels are reduced in G256W/+ mice despite normal mRNA levels.
- Ezogabine partially reversed the conduction suppression.
Conclusions:
- KCNQ2 G256W pathogenicity results from combined effects on conduction, targeting, and stability.
- The KCNQ2 pore turret plays a critical role in channel function.
- The G256W/+ mouse is a valid model for KCNQ2 encephalopathy, applicable to patients with nearby variants.
Abstract:
KCNQ2 variants in children with neurodevelopmental impairment are difficult to assess due to their heterogeneity and unclear pathogenic mechanisms. We describe a child with neonatal-onset epilepsy, developmental impairment of intermediate severity, and KCNQ2 G256W heterozygosity. Analyzing prior KCNQ2 channel cryoelectron microscopy models revealed G256 as a node of an arch-shaped non-covalent bond network linking S5, the pore turret, and the ion path. Co-expression with G256W dominantly suppressed conduction by wild-type subunits in heterologous cells. Ezogabine partly reversed this suppression. G256W/+ mice have epilepsy leading to premature deaths. Hippocampal CA1 pyramidal cells from G256W/+ brain slices showed hyperexcitability. G256W/+ pyramidal cell KCNQ2 and KCNQ3 immunolabeling was significantly shifted from axon initial segments to neuronal somata. Despite normal mRNA levels, G256W/+ mouse KCNQ2 protein levels were reduced by about 50%. Our findings indicate that G256W pathogenicity results from multiplicative effects, including reductions in intrinsic conduction, subcellular targeting, and protein stability. These studies provide evidence for an unexpected and novel role for the KCNQ2 pore turret and introduce a valid animal model of KCNQ2 encephalopathy. Our results, spanning structure to behavior, may be broadly applicable because the majority of KCNQ2 encephalopathy patients share variants near the selectivity filter.
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