Literature DB >> 33369088

Generation and basic characterization of a gene-trap knockout mouse model of Scn2a with a substantial reduction of voltage-gated sodium channel Nav 1.2 expression.

Muriel Eaton1,2, Jingliang Zhang1,2, Zhixiong Ma1,2, Anthony C Park1,2, Emma Lietzke1,2, Chloé M Romero1,2, Yushuang Liu1,2, Emily R Coleman1,2, Xiaoling Chen1,2, Tiange Xiao1,2, Zhefu Que1,2, Shirong Lai1,2, Jiaxiang Wu1,2, Ji Hea Lee1,2, Sophia Palant1,2, Huynhvi P Nguyen1,2, Zhuo Huang3, William C Skarnes4, Wendy A Koss2,5, Yang Yang1,2.   

Abstract

Large-scale genetic studies revealed SCN2A as one of the most frequently mutated genes in patients with neurodevelopmental disorders. SCN2A encodes for the voltage-gated sodium channel isoform 1.2 (Nav 1.2) expressed in the neurons of the central nervous system. Homozygous knockout (null) of Scn2a in mice is perinatal lethal, whereas heterozygous knockout of Scn2a (Scn2a+/- ) results in mild behavior abnormalities. The Nav 1.2 expression level in Scn2a+/- mice is reported to be around 50-60% of the wild-type (WT) level, which indicates that a close to 50% reduction of Nav 1.2 expression may not be sufficient to lead to major behavioral phenotypes in mice. To overcome this barrier, we characterized a novel mouse model of severe Scn2a deficiency using a targeted gene-trap knockout (gtKO) strategy. This approach produces viable homozygous mice (Scn2agtKO/gtKO ) that can survive to adulthood, with about a quarter of Nav 1.2 expression compared to WT mice. Innate behaviors like nesting and mating were profoundly disrupted in Scn2agtKO/gtKO mice. Notably, Scn2agtKO/gtKO mice have a significantly decreased center duration compared to WT in the open field test, suggesting anxiety-like behaviors in a novel, open space. These mice also have decreased thermal and cold tolerance. Additionally, Scn2agtKO/gtKO mice have increased fix-pattern exploration in the novel object exploration test and a slight increase in grooming, indicating a detectable level of repetitive behaviors. They bury little to no marbles and have decreased interaction with novel objects. These Scn2a gene-trap knockout mice thus provide a unique model to study pathophysiology associated with severe Scn2a deficiency.
© 2020 John Wiley & Sons Ltd and International Behavioural and Neural Genetics Society.

Entities:  

Keywords:  Nav1.2; SCN2A gene; behavior; channelopathy; gene-trap knockout; genetic variants; mouse model; nesting; neurodevelopmental disorder; open field; voltage-gated sodium channel

Mesh:

Substances:

Year:  2021        PMID: 33369088     DOI: 10.1111/gbb.12725

Source DB:  PubMed          Journal:  Genes Brain Behav        ISSN: 1601-183X            Impact factor:   3.449


  5 in total

1.  Deficiency of autism-related Scn2a gene in mice disrupts sleep patterns and circadian rhythms.

Authors:  Zhixiong Ma; Muriel Eaton; Yushuang Liu; Jingliang Zhang; Xiaoling Chen; Xinyu Tu; Yiqiang Shi; Zhefu Que; Kyle Wettschurack; Zaiyang Zhang; Riyi Shi; Yueyi Chen; Adam Kimbrough; Nadia A Lanman; Leah Schust; Zhuo Huang; Yang Yang
Journal:  Neurobiol Dis       Date:  2022-03-14       Impact factor: 7.046

2.  Hyperexcitability and Pharmacological Responsiveness of Cortical Neurons Derived from Human iPSCs Carrying Epilepsy-Associated Sodium Channel Nav1.2-L1342P Genetic Variant.

Authors:  Zhefu Que; Maria I Olivero-Acosta; Jingliang Zhang; Muriel Eaton; Anke M Tukker; Xiaoling Chen; Jiaxiang Wu; Junkai Xie; Tiange Xiao; Kyle Wettschurack; Layan Yunis; J Marshall Shafer; James A Schaber; Jean-Christophe Rochet; Aaron B Bowman; Chongli Yuan; Zhuo Huang; Chang-Deng Hu; Darci J Trader; William C Skarnes; Yang Yang
Journal:  J Neurosci       Date:  2021-10-29       Impact factor: 6.709

Review 3.  Paradoxical Hyperexcitability in Disorders of Neurodevelopment.

Authors:  Michelle W Antoine
Journal:  Front Mol Neurosci       Date:  2022-04-29       Impact factor: 5.639

4.  Cellular and behavioral effects of altered NaV1.2 sodium channel ion permeability in Scn2aK1422E mice.

Authors:  Dennis M Echevarria-Cooper; Nicole A Hawkins; Sunita N Misra; Alexandra M Huffman; Tyler Thaxton; Christopher H Thompson; Roy Ben-Shalom; Andrew D Nelson; Anna M Lipkin; Alfred L George; Kevin J Bender; Jennifer A Kearney
Journal:  Hum Mol Genet       Date:  2022-08-25       Impact factor: 5.121

5.  Severe deficiency of the voltage-gated sodium channel NaV1.2 elevates neuronal excitability in adult mice.

Authors:  Jingliang Zhang; Xiaoling Chen; Muriel Eaton; Jiaxiang Wu; Zhixiong Ma; Shirong Lai; Anthony Park; Talha S Ahmad; Zhefu Que; Ji Hea Lee; Tiange Xiao; Yuansong Li; Yujia Wang; Maria I Olivero-Acosta; James A Schaber; Krishna Jayant; Chongli Yuan; Zhuo Huang; Nadia A Lanman; William C Skarnes; Yang Yang
Journal:  Cell Rep       Date:  2021-08-03       Impact factor: 9.423

  5 in total

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