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首页> 外文期刊>Genesis: the journal of genetics and development >Neural Crest Cell-Specific Inactivation of Nipbl or Mau2 During Mouse Development Results in a Late Onset of Craniofacial Defects
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Neural Crest Cell-Specific Inactivation of Nipbl or Mau2 During Mouse Development Results in a Late Onset of Craniofacial Defects

机译:Nipbl或Mau2的神经C细胞特异性失活在小鼠发育过程中导致颅面缺陷的晚期发作。

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Nipbl (Scc2) and Mau2 (Scc4) encode evolutionary conserved proteins that play a vital role for loading the cohesin complex onto chromosomes, thereby ensuring accurate chromosome segregation during cell division. While mutations in human NIPBL are known to cause the developmental disorder Cornelia de Lange syndrome, the functions of Nipbl and Mau2 in mammalian development are poorly defined. Here we generated conditional alleles for both genes in mice and show that neural crest cell-specific inactivation of Nipbl or Mau2 strongly affects craniofacial development. Surprisingly, the early phase of neural crest cell proliferation and migration is only moderately affected in these mutants. Moreover, we found that Mau2 single homozygous mutants exhibited a more severe craniofacial phenotype when compared to that of Nipbl; Mau2 double homozygous mutants. This raises the possibility that the Mau2/Nipbl protein interaction is not only required for cohesin loading, but may also be required to restrict the level of Nipbl involved in regulating gene expression. Together, the data suggest that proliferating neural crest cells tolerate a substantial reduction of cohesin loading proteins and we propose that the successive decrease of cohesin loading proteins in neural crest cells may alter developmental gene regulation in a highly dynamic manner
机译:Nipbl(Scc2)和Mau2(Scc4)编码进化保守蛋白,它们在将黏着蛋白复合物加载到染色体上起着至关重要的作用,从而确保细胞分裂过程中染色体的精确分离。虽然已知人类NIPBL中的突变会导致发育障碍Cornelia de Lange综合征,但Nipbl和Mau2在哺乳动物发育中的功能却定义不清。在这里,我们为小鼠中的两个基因生成了条件等位基因,并表明Nipbl或Mau2的神经c细胞特异性失活强烈影响颅面发育。令人惊讶的是,在这些突变体中,神经c细胞的增殖和迁移的早期阶段仅受到中等程度的影响。此外,我们发现与Nipbl相比,Mau2单纯合突变体表现出更严重的颅面表型。 Mau2双纯合突变体。这增加了Mau2 / Nipbl蛋白相互作用不仅是黏附素加载所必需的,而且还可能是限制参与调节基因表达的Nipbl水平所必需的。在一起,数据表明增殖的神经c细胞可以忍受黏附素负载蛋白的大幅减少,我们建议神经neural细胞中黏附素负载蛋白的连续降低可能以高度动态的方式改变发育基因的调控。

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