Literature DB >> 24336072

Truncated Cables1 causes agenesis of the corpus callosum in mice.

Seiya Mizuno1, Dinh T H Tra1, Atsushi Mizobuchi1, Hiroyoshi Iseki2, Saori Mizuno-Iijima1, Jun-Dal Kim3, Junji Ishida3, Yoichi Matsuda4, Satoshi Kunita5, Akiyoshi Fukamizu3, Fumihiro Sugiyama1, Ken-ichi Yagami1.   

Abstract

Agenesis of the corpus callosum (ACC) is a congenital abnormality of the brain structure. More than 60 genes are known to be involved in corpus callosum development. However, the molecular mechanisms underlying ACC are not fully understood. Previously, we produced a novel transgenic mouse strain, TAS, carrying genes of the tetracycline-inducible expression system that are not involved in brain development, and inherited ACC was observed in the brains of all homozygous TAS mice. Although ACC was probably induced by transgene insertion mutation, the causative gene and the molecular mechanism of its pathogenesis remain unclear. Here, we first performed interphase three-color fluorescence in situ hybridization (FISH) analysis to determine the genomic insertion site. Transgenes were inserted into chromosome 18 ∼12.0 Mb from the centromere. Gene expression analysis and genomic PCR walking showed that the genomic region containing exon 4 of Cables1 was deleted by transgene insertion and the other exons of Cables1 were intact. The mutant allele was designated as Cables1(TAS). Interestingly, Cables1(TAS) mRNA consisted of exons 1-3 of Cables1 and part of the transgene that encoded a novel truncated Cables1 protein. Homozygous TAS mice exhibited mRNA expression of Cables1(TAS) in the fetal cerebrum, but not that of wild-type Cables1. To investigate whether a dominant negative effect of Cables1(TAS) or complete loss of function of Cables1 gives rise to ACC, we produced Cables1-null mutant mice. ACC was not observed in Cables1-null mutant mice, suggesting that a dominant negative effect of Cables1(TAS) impairs callosal formation. Moreover, ACC frequency in Cables1(+/TAS) mice was significantly lower than that in Cables1(-/TAS) mice, indicating that wild-type Cables1 interfered with the dominant negative effect of Cables1(TAS). This study indicated that truncated Cables1 causes ACC and wild-type Cables1 contributes to callosal formation.

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Year:  2013        PMID: 24336072     DOI: 10.1038/labinvest.2013.146

Source DB:  PubMed          Journal:  Lab Invest        ISSN: 0023-6837            Impact factor:   5.662


  38 in total

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10.  Genetic modifiers of otocephalic phenotypes in Otx2 heterozygous mutant mice.

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  5 in total

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Journal:  Endocr Relat Cancer       Date:  2017-05-22       Impact factor: 5.678

2.  Generation of bicistronic reporter knockin mice for visualizing germ layers.

Authors:  Hayate Suzuki; Tra Thi Huong Dinh; Yoko Daitoku; Yoko Tanimoto; Kanako Kato; Takuya Azami; Masatsugu Ema; Kazuya Murata; Seiya Mizuno; Fumihiro Sugiyama
Journal:  Exp Anim       Date:  2019-06-13

3.  Disruption of entire Cables2 locus leads to embryonic lethality by diminished Rps21 gene expression and enhanced p53 pathway.

Authors:  Tra Thi Huong Dinh; Hiroyoshi Iseki; Seiya Mizuno; Saori Iijima-Mizuno; Yoko Tanimoto; Yoko Daitoku; Kanako Kato; Yuko Hamada; Ammar Shaker Hamed Hasan; Hayate Suzuki; Kazuya Murata; Masafumi Muratani; Masatsugu Ema; Jun-Dal Kim; Junji Ishida; Akiyoshi Fukamizu; Mitsuyasu Kato; Satoru Takahashi; Ken-Ichi Yagami; Valerie Wilson; Ruth M Arkell; Fumihiro Sugiyama
Journal:  Elife       Date:  2021-05-05       Impact factor: 8.140

4.  Peri-implantation lethality in mice carrying megabase-scale deletion on 5qc3.3 is caused by Exoc1 null mutation.

Authors:  Seiya Mizuno; Kohei Takami; Yoko Daitoku; Yoko Tanimoto; Tra Thi Huong Dinh; Saori Mizuno-Iijima; Yoshikazu Hasegawa; Satoru Takahashi; Fumihiro Sugiyama; Ken-ichi Yagami
Journal:  Sci Rep       Date:  2015-09-08       Impact factor: 4.379

5.  Characterization of a bicistronic knock-in reporter mouse model for investigating the role of CABLES2 in vivo.

Authors:  Ammar Shaker Hamed Hasan; Tra Thi Huong Dinh; Hoai Thu Le; Saori Mizuno-Iijima; Yoko Daitoku; Miyuki Ishida; Yoko Tanimoto; Kanako Kato; Atsushi Yoshiki; Kazuya Murata; Seiya Mizuno; Fumihiro Sugiyama
Journal:  Exp Anim       Date:  2020-08-11
  5 in total

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