首页> 外文期刊>Developmental dynamics: an official publication of the American Association of Anatomists >The ENU-induced cetus mutation reveals an essential role of the DNA helicase DDX11 for mesoderm development during early mouse embryogenesis.
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The ENU-induced cetus mutation reveals an essential role of the DNA helicase DDX11 for mesoderm development during early mouse embryogenesis.

机译:ENU诱导的髋臼突变揭示了DNA HelicaseDDX11在早期小鼠胚胎发生期间Mesoderm发育的基本作用。

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DDX11 is a DNA helicase of the conserved FANCJ/RAD3/XPD family involved in maintaining genome stability. Studies in yeast and humans have shown requirements for DDX11 in sister chromatid cohesion and DNA repair. In mouse, loss of Ddx11 results in embryonic lethality. However, the developmental defects of Ddx11 mutants are poorly understood.We describe the characterization and positional cloning of cetus, a mouse ENU-induced mutation in Ddx11. We demonstrate that cetus causes a nonconservative amino acid change in DDX11 motif V and that this mutation is a null allele of Ddx11. cetus mutant embryos failed to thrive beyond embryonic day 8.5 and displayed placental defects similar to those described in Ddx11 null embryos. Additionally, our characterization of Ddx11(cetus) mutants identified embryonic phenotypes that had not been previously reported in Ddx11(KO) embryos, including loss of somitic mesoderm, an open kinked neural tube and abnormal heart looping. We show that loss of Ddx11 causes widespread apoptosis from early embryonic stages and that loss of Ddx11 disrupts somitic mesoderm more dramatically than other embryonic cells.Our results identify novel roles of Ddx11 during embryo morphogenesis and demonstrate that the activity of its motif V is essential for DDX11 function.
机译:DDX11是涉及基因组稳定性的保守的FANCJ / RAD3 / XPD系列的DNA螺旋酶。酵母和人类的研究表明了DDX11在姐妹染色体凝聚力和DNA修复中的要求。在鼠标中,DDX11的丧失导致胚胎致死性。然而,DDX11突变体的发育缺陷较差地理解。我们描述了Cetus的表征和定位克隆,DDX11中的小鼠enu诱导的突变。我们证明Cetus导致DDX11 MOTIF V中的非可生素氨基酸变化,并且该突变是DDX11的无效等位基因。 Cetus突变体胚胎未能超越胚胎第8.5天8.5,并显示与DDX11零胚胎中描述的胎盘缺陷相似。此外,我们对DDX11(Cetus)突变体的表征鉴定了先前在DDX11(KO)胚胎中未报告的胚胎表型,包括单体中胚层的丧失,开放的扭结神经管和异常心脏循环。我们表明DDX11的丧失导致早期胚胎阶段的广泛凋亡,并且DDX11的丧失比其他胚胎细胞更大地破坏了SOMITM中胚层。结果鉴定DDX11在胚胎形态发生期间的新颖作用,并证明其图案V的活性对于DDX11功能。

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