Gage Philip J, Qian Min, Wu Dianqing, Rosenberg Kevin I
Department of Ophthalmology and Visual Sciences, University of Michigan Medical School, Ann Arbor, MI 48105, USA.
Dev Biol. 2008 May 1;317(1):310-24. doi: 10.1016/j.ydbio.2008.02.030. Epub 2008 Mar 4.
Local control of cell signaling activity and integration of inputs from multiple signaling pathways are central for normal development but the underlying mechanisms remain poorly understood. Here we show that Dkk2, encoding an antagonist of canonical Wnt signaling, is an essential downstream target of the PITX2 homeodomain transcription factor in neural crest during eye development. Canonical Wnt signaling is ectopically activated in central ocular surface ectoderm and underlying mesenchyme in Pitx2- and Dkk2-deficient mice. General ocular surface ectoderm identity is maintained during development in Dkk2-deficient mice but peripheral fates, including conjunctival goblet cells and eyelash follicles, are ectopically permitted within more central structures and eyelids are hypomorphic. Loss of DKK2 results in ectopic blood vessels within the periocular mesenchyme and PITX2 expression remains persistently high, providing evidence for a negative feedback loop. Collectively, these data suggest that activation of Dkk2 by PITX2 provides a mechanism to locally suppress canonical Wnt signaling activity during eye development, a paradigm that may be a model for achieving local or transient inhibition of pathway activity elsewhere during embryogenesis. We further propose a model placing PITX2 as an essential integration node between retinoic acid and canonical Wnt signaling during eye development.
细胞信号传导活性的局部调控以及来自多个信号通路的输入整合对于正常发育至关重要,但其潜在机制仍知之甚少。在这里,我们表明,编码经典Wnt信号拮抗剂的Dkk2是眼发育过程中神经嵴中PITX2同源域转录因子的重要下游靶点。在Pitx2和Dkk2缺陷小鼠的中央眼表外胚层和下方间充质中,经典Wnt信号被异位激活。在Dkk2缺陷小鼠的发育过程中,一般眼表外胚层特征得以维持,但包括结膜杯状细胞和睫毛毛囊在内的外周命运在更中央的结构中被异位允许,并且眼睑发育不全。DKK2的缺失导致眼周间充质内出现异位血管,且PITX2表达持续高水平,这为负反馈回路提供了证据。总体而言,这些数据表明,PITX2激活Dkk2提供了一种机制,在眼发育过程中局部抑制经典Wnt信号活性,这一模式可能是胚胎发育过程中在其他部位实现局部或瞬时抑制信号通路活性的模型。我们进一步提出了一个模型,将PITX2置于眼发育过程中视黄酸和经典Wnt信号之间的关键整合节点。