Galvis Laura A, Holik Aliaksei Z, Short Kieran M, Pasquet Julie, Lun Aaron T L, Blewitt Marnie E, Smyth Ian M, Ritchie Matthew E, Asselin-Labat Marie-Liesse
ACRF Stem Cells and Cancer Division, The Walter and Eliza Hall Institute of Medical Research, Parkville, Victoria 3052, Australia.
ACRF Stem Cells and Cancer Division, The Walter and Eliza Hall Institute of Medical Research, Parkville, Victoria 3052, Australia Department of Medical Biology, The University of Melbourne, Parkville, Victoria 3052, Australia.
Development. 2015 Apr 15;142(8):1458-69. doi: 10.1242/dev.122077. Epub 2015 Mar 19.
Epigenetic mechanisms involved in the establishment of lung epithelial cell lineage identities during development are largely unknown. Here, we explored the role of the histone methyltransferase Ezh2 during lung lineage determination. Loss of Ezh2 in the lung epithelium leads to defective lung formation and perinatal mortality. We show that Ezh2 is crucial for airway lineage specification and alveolarization. Using optical projection tomography imaging, we found that branching morphogenesis is affected in Ezh2 conditional knockout mice and the remaining bronchioles are abnormal, lacking terminally differentiated secretory club cells. Remarkably, RNA-seq analysis revealed the upregulation of basal genes in Ezh2-deficient epithelium. Three-dimensional imaging for keratin 5 further showed the unexpected presence of a layer of basal cells from the proximal airways to the distal bronchioles in E16.5 embryos. ChIP-seq analysis indicated the presence of Ezh2-mediated repressive marks on the genomic loci of some but not all basal genes, suggesting an indirect mechanism of action of Ezh2. We found that loss of Ezh2 de-represses insulin-like growth factor 1 (Igf1) expression and that modulation of IGF1 signaling ex vivo in wild-type lungs could induce basal cell differentiation. Altogether, our work reveals an unexpected role for Ezh2 in controlling basal cell fate determination in the embryonic lung endoderm, mediated in part by repression of Igf1 expression.
发育过程中参与肺上皮细胞谱系身份确立的表观遗传机制在很大程度上尚不清楚。在此,我们探究了组蛋白甲基转移酶Ezh2在肺谱系决定过程中的作用。肺上皮细胞中Ezh2的缺失导致肺形成缺陷和围产期死亡。我们表明,Ezh2对气道谱系特化和肺泡化至关重要。使用光学投影断层成像,我们发现Ezh2条件性敲除小鼠的分支形态发生受到影响,剩余的细支气管异常,缺乏终末分化的分泌性杯状细胞。值得注意的是,RNA测序分析显示Ezh2缺陷上皮中基底基因上调。角蛋白5的三维成像进一步显示,在E16.5胚胎中,从近端气道到远端细支气管意外存在一层基底细胞。染色质免疫沉淀测序分析表明,Ezh2介导的抑制性标记存在于一些但并非所有基底基因的基因组位点上,提示Ezh2的间接作用机制。我们发现Ezh2的缺失会解除对胰岛素样生长因子1(Igf1)表达的抑制,并且在野生型肺中体外调节IGF1信号传导可诱导基底细胞分化。总之,我们的工作揭示了Ezh2在控制胚胎肺内胚层基底细胞命运决定中的意外作用,部分是通过抑制Igf1表达介导的。