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Overexpression of Grainyhead-like 3 causes spina bifida and interacts genetically with mutant alleles of Grhl2 and Vangl2 in mice

机译:粒子状3的过度表达引起脊柱珠氏菌,并在小鼠中突变地等待突变等位基因(vangl2)

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摘要

The genetic basis of human neural tube defects (NTD5), such as anencephaly and spina bifida (SB), is complex and heterogeneous. Grainyhead-like genes represent candidates for involvement in NTD5 based on the presence of SB and exencephaly in mice carrying loss-of-function alleles of Grhl2 or Grhl3. We found that reinstatement of Grhl3 expression, by bacterial artificial chromosome (BAC)-mediated transgenesis, prevents SB in Grhl3-null embryos, as in the Grhl3 hypomorphic curly tail strain. Notably, however, further increase in expression of Grhl3 causes highly penetrant SB. Grhl3 overexpression recapitulates the spinal NTD phenotype of loss-of-function embryos, although the underlying mechanism differs. However, it does not phenocopy other defects of Grhl3-null embryos such as abnormal axial curvature, cranial NTD5 (exencephaly) or skin barrier defects, the latter being rescued by the Grhl3-transgene. Grhl2 and Grhl3 can form homodimers and heterodimers, suggesting a possible model in which defects arising from overexpression of Grhl3 result from sequestration of Grhl2 in heterodimers, mimicking Grhl2 loss of function. This hypothesis predicts that increased abundance of Grhl2 would have an ameliorating effect in Grhl3 overexpressing embryo. Instead, we observed a striking 3 additive genetic interaction between Grhl2 and Grhl3 gain-of-function alleles. Severe SB arose in embryos in which both genes were expressed at moderately elevated levels that individually do not cause NTD5. Furthermore, moderate Grhl3 overexpression also interacted with the Vangl2(Lp) allele to cause SB, demonstrating genetic interaction with the planar cell polarity signalling pathway that is implicated in mouse and human NTD5.
机译:人体神经管缺陷(NTD5)的遗传基础,例如血液畸形和脊柱珠氏菌(SB),是复杂的和非均相的。粒子状基因代表基于携带携带函数丧失GRHL2或GRHL3的小鼠的SB和实际肢体的患者参与NTD5的候选者。我们发现,通过细菌人工染色体(BAC)介导的转基因恢复GRHL3表达,可防止Sb在GRHL3-零胚轴中,如在GRHL3 rhly卷曲尾部应变中。然而,特别是,GRHL3表达的进一步增加导致高度渗透的SB。 GRHL3过表达鉴定了脊髓缺失胚胎的脊髓NTD表型,尽管潜在的机制不同。然而,它没有诸如异常轴向曲率,颅骨NTD5(实验肢体)或皮肤屏障缺陷的诸如异常的轴向曲率,后者被GRHL3-转基因衰减的其他缺陷。 GRHL2和GRHL3可以形成同源过二聚体和异二聚体,表明一种可能的模型,其中来自GRHL3的过表达引起的缺陷是由GRHL2在异二聚体中的螯合,模拟GRHL2失去功能。该假设预测GRHL2的丰度增加将在GRHL3过表达胚胎中具有改善效果。相反,我们观察到GRHL2和GRHL3的致功能等位基因之间的醒目3添加剂遗传相互作用。严重的Sb在胚胎中出现,其中两个基因在中等升高的水平下表达,单独不会引起NTD5。此外,中等GRHL3过表达也与Vangl2(LP)等位基因相互作用以引起Sb,证明与平面细胞极性信号传导途径的遗传相互作用涉及在小鼠和人NTD5中。

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  • 来源
    《Human Molecular Genetics》 |2018年第24期|共13页
  • 作者单位

    UCL UCL Great Ormond St Inst Child Hlth Dev Biol &

    Canc Programme London WC1N 1EH England;

    UCL UCL Great Ormond St Inst Child Hlth Dev Biol &

    Canc Programme London WC1N 1EH England;

    UCL UCL Great Ormond St Inst Child Hlth Dev Biol &

    Canc Programme London WC1N 1EH England;

    Univ Calif Irvine Dept Biol Chem Irvine CA 92717 USA;

    UCL UCL Great Ormond St Inst Child Hlth Dev Biol &

    Canc Programme London WC1N 1EH England;

    UCL UCL Great Ormond St Inst Child Hlth Dev Biol &

    Canc Programme London WC1N 1EH England;

    UCL UCL Great Ormond St Inst Child Hlth Dev Biol &

    Canc Programme London WC1N 1EH England;

    UCL UCL Great Ormond St Inst Child Hlth Dev Biol &

    Canc Programme London WC1N 1EH England;

    UCL UCL Great Ormond St Inst Child Hlth Genet &

    Genom Med Programme London WC1N 1EH England;

    Univ Calif Irvine Dept Biol Chem Irvine CA 92717 USA;

    UCL UCL Great Ormond St Inst Child Hlth Dev Biol &

    Canc Programme London WC1N 1EH England;

    UCL UCL Great Ormond St Inst Child Hlth Dev Biol &

    Canc Programme London WC1N 1EH England;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 医学遗传学;
  • 关键词

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