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Publication : A missense mutation in <i>Kcnc3</i> causes hippocampal learning deficits in mice.

First Author  Xu P Year  2022
Journal  Proc Natl Acad Sci U S A Volume  119
Issue  31 Pages  e2204901119
PubMed ID  35881790 Mgi Jnum  J:327327
Mgi Id  MGI:7328363 Doi  10.1073/pnas.2204901119
Citation  Xu P, et al. (2022) A missense mutation in Kcnc3 causes hippocampal learning deficits in mice. Proc Natl Acad Sci U S A 119(31):e2204901119
abstractText  Although a wide variety of genetic tools has been developed to study learning and memory, the molecular basis of memory encoding remains incompletely understood. Here, we undertook an unbiased approach to identify novel genes critical for memory encoding. From a large-scale, in vivo mutagenesis screen using contextual fear conditioning, we isolated in mice a mutant, named Clueless, with spatial learning deficits. A causative missense mutation (G434V) was found in the voltage-gated potassium channel, subfamily C member 3 (Kcnc3) gene in a region that encodes a transmembrane voltage sensor. Generation of a Kcnc3(G434V) CRISPR mutant mouse confirmed this mutation as the cause of the learning defects. While G434V had no effect on transcription, translation, or trafficking of the channel, electrophysiological analysis of the G434V mutant channel revealed a complete loss of voltage-gated conductance, a broadening of the action potential, and decreased neuronal firing. Together, our findings have revealed a role for Kcnc3 in learning and memory.
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