Muto Akihiko, Ikeda Shingo, Lopez-Burks Martha E, Kikuchi Yutaka, Calof Anne L, Lander Arthur D, Schilling Thomas F
Department of Developmental & Cell Biology, University of California, Irvine, Irvine, California, United States of America; Center for Complex Biological Systems, University of California, Irvine, Irvine California; Department of Biological Science, Graduate School of Science, Hiroshima University, Higashi-Hiroshima, Hiroshima, Japan.
Department of Biological Science, Graduate School of Science, Hiroshima University, Higashi-Hiroshima, Hiroshima, Japan.
PLoS Genet. 2014 Sep 25;10(9):e1004671. doi: 10.1371/journal.pgen.1004671. eCollection 2014 Sep.
Haploinsufficiency for Nipbl, a cohesin loading protein, causes Cornelia de Lange Syndrome (CdLS), the most common "cohesinopathy". It has been proposed that the effects of Nipbl-haploinsufficiency result from disruption of long-range communication between DNA elements. Here we use zebrafish and mouse models of CdLS to examine how transcriptional changes caused by Nipbl deficiency give rise to limb defects, a common condition in individuals with CdLS. In the zebrafish pectoral fin (forelimb), knockdown of Nipbl expression led to size reductions and patterning defects that were preceded by dysregulated expression of key early limb development genes, including fgfs, shha, hand2 and multiple hox genes. In limb buds of Nipbl-haploinsufficient mice, transcriptome analysis revealed many similar gene expression changes, as well as altered expression of additional classes of genes that play roles in limb development. In both species, the pattern of dysregulation of hox-gene expression depended on genomic location within the Hox clusters. In view of studies suggesting that Nipbl colocalizes with the mediator complex, which facilitates enhancer-promoter communication, we also examined zebrafish deficient for the Med12 Mediator subunit, and found they resembled Nipbl-deficient fish in both morphology and gene expression. Moreover, combined partial reduction of both Nipbl and Med12 had a strongly synergistic effect, consistent with both molecules acting in a common pathway. In addition, three-dimensional fluorescent in situ hybridization revealed that Nipbl and Med12 are required to bring regions containing long-range enhancers into close proximity with the zebrafish hoxda cluster. These data demonstrate a crucial role for Nipbl in limb development, and support the view that its actions on multiple gene pathways result from its influence, together with Mediator, on regulation of long-range chromosomal interactions.
黏连蛋白装载蛋白Nipbl的单倍剂量不足会导致科妮莉亚·德朗热综合征(CdLS),这是最常见的“黏连蛋白病”。有人提出,Nipbl单倍剂量不足的影响是由于DNA元件之间远程通讯的中断所致。在此,我们使用CdLS的斑马鱼和小鼠模型来研究由Nipbl缺陷引起的转录变化如何导致肢体缺陷,这是CdLS患者的常见症状。在斑马鱼的胸鳍(前肢)中,敲低Nipbl表达会导致尺寸减小和模式缺陷,而这些缺陷之前关键的早期肢体发育基因(包括fgfs、shha、hand2和多个hox基因)的表达失调。在Nipbl单倍剂量不足小鼠的肢体芽中,转录组分析揭示了许多类似的基因表达变化,以及在肢体发育中起作用的其他类别基因的表达改变。在这两个物种中,hox基因表达失调的模式取决于Hox簇内的基因组位置。鉴于有研究表明Nipbl与促进增强子-启动子通讯的中介复合物共定位,我们还研究了Med12中介亚基缺陷的斑马鱼,发现它们在形态和基因表达上都与Nipbl缺陷的鱼相似。此外,Nipbl和Med12的联合部分减少具有强烈的协同效应,这与这两种分子在共同途径中起作用一致。此外,三维荧光原位杂交显示,Nipbl和Med12是使包含远程增强子的区域与斑马鱼hoxda簇紧密靠近所必需的。这些数据证明了Nipbl在肢体发育中的关键作用,并支持这样一种观点,即它对多个基因途径的作用是由于它与中介复合物一起对远程染色体相互作用调节的影响。