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Published on: January 29, 2018
Etiology of a genetically complex seizure disorder in Celf4 mutant mice
J L Wagnon1, C L Mahaffey, W Sun
1The Jackson Laboratory, Bar Harbor, ME 04609-1500, USA.
Abstract:
Mice deficient for the gene encoding the RNA-binding protein CELF4 (CUGBP, ELAV-like family member 4) have a complex seizure phenotype that includes both convulsive and non-convulsive seizures, depending upon gene dosage and strain background, modeling genetically complex epilepsy. Invertebrate CELF is associated with translational control in fruit fly ovary epithelium and with neurogenesis and neuronal function in the nematode. Mammalian CELF4 is expressed widely during early development, but is restricted to the central nervous system in adults. To better understand the etiology of the seizure disorder of Celf4 deficient mice, we studied seizure incidence with spatial and temporal conditional knockout Celf4 alleles. For convulsive seizure phenotypes, it is sufficient to delete Celf4 in adulthood at the age of 7 weeks. This timing is in contrast to absence-like non-convulsive seizures, which require deletion before the end of the first postnatal week. Interestingly, selective deletion of Celf4 from cerebral cortex and hippocampus excitatory neurons, but not from inhibitory neurons, is sufficient to lower seizure threshold and to promote spontaneous convulsions. Correspondingly, Celf4 deficient mice have altered excitatory, but not inhibitory, neurotransmission as measured by patch-clamp recordings of cortical layer V pyramidal neurons. Finally, immunostaining in conjunction with an inhibitory neuron-specific reporter shows that CELF4 is expressed predominantly in excitatory neurons. Our results suggest that CELF4 plays a specific role in regulating excitatory neurotransmission. We posit that altered excitatory neurotransmission resulting from Celf4 deficiency underlies the complex seizure disorder in Celf4 mutant mice.
Insights
Mice lacking the RNA-binding protein CELF4 (CUGBP, ELAV-like family member 4) exhibit complex epilepsy. CELF4 deficiency in excitatory neurons alters neurotransmission, leading to seizures.
Area of Science:
- Neuroscience
- Genetics
- Molecular Biology
Background:
- CUGBP, ELAV-like family member 4 (CELF4) is an RNA-binding protein.
- CELF proteins are involved in translational control and neuronal function.
- CELF4 is expressed in the adult central nervous system and its deficiency models complex epilepsy.
Purpose of the Study:
- To investigate the role of CELF4 in the etiology of seizures in Celf4 deficient mice.
- To determine the specific neuronal populations and developmental timing critical for CELF4's role in seizure development.
Main Methods:
- Conditional knockout of Celf4 in mice at different ages and in specific neuronal populations.
- Analysis of seizure incidence and phenotype.
- Patch-clamp electrophysiology to measure excitatory and inhibitory neurotransmission.
- Immunohistochemistry to determine CELF4 expression patterns.
Main Results:
- Convulsive seizures result from Celf4 deletion in adulthood, while non-convulsive seizures require deletion before the first postnatal week.
- Selective deletion of Celf4 in excitatory neurons (but not inhibitory neurons) of the cortex and hippocampus lowers seizure threshold.
- Celf4 deficient mice exhibit altered excitatory neurotransmission but normal inhibitory neurotransmission.
- CELF4 is predominantly expressed in excitatory neurons.
Conclusions:
- CELF4 plays a critical role in regulating excitatory neurotransmission.
- Altered excitatory neurotransmission due to Celf4 deficiency underlies the complex seizure disorder observed in mutant mice.
- CELF4 is a key regulator of neuronal function and excitability.

