Zeng Yi A, Verheyen Esther M
Department of Molecular Biology and Biochemistry, Simon Fraser University, Burnaby, BC, V5A 1S6, Canada.
Development. 2004 Jun;131(12):2911-20. doi: 10.1242/dev.01177.
The cellular events that govern patterning during animal development must be precisely regulated. This is achieved by extrinsic factors and through the action of both positive and negative feedback loops. Wnt/Wg signals are crucial across species in many developmental patterning events. We report that Drosophila nemo (nmo) acts as an intracellular feedback inhibitor of Wingless (Wg) and that it is a novel Wg target gene. Nemo antagonizes the activity of the Wg signal, as evidenced by the finding that reduction of nmo rescues the phenotypic defects induced by misexpression of various Wg pathway components. In addition, the activation of Wg-dependent gene expression is suppressed in wing discs ectopically expressing nmo and enhanced cell autonomously in nmo mutant clones. We find that nmo itself is a target of Wg signaling in the imaginal wing disc. nmo expression is induced upon high levels of Wg signaling and can be inhibited by interfering with Wg signaling. Finally, we observe alterations in Arm stabilization upon modulation of Nemo. These observations suggest that the patterning mechanism governed by Wg involves a negative feedback circuit in which Wg induces expression of its own antagonist Nemo.
在动物发育过程中,控制模式形成的细胞事件必须受到精确调控。这是通过外在因素以及正负反馈回路的作用来实现的。Wnt/Wg信号在许多发育模式形成事件中跨物种都至关重要。我们报道,果蝇中的nemo(nmo)作为无翅(Wg)的细胞内反馈抑制剂,并且它是一个新的Wg靶基因。Nemo拮抗Wg信号的活性,这一发现表明,nmo的减少挽救了由各种Wg信号通路成分的错误表达所诱导的表型缺陷。此外,在异位表达nmo的翅盘中,Wg依赖的基因表达被抑制,而在nmo突变克隆中细胞自主增强。我们发现nmo本身是成虫翅盘中Wg信号的一个靶标。高水平的Wg信号诱导nmo表达,并且通过干扰Wg信号可以抑制nmo表达。最后,我们观察到Nemo调节后Arm稳定性的改变。这些观察结果表明,由Wg控制的模式形成机制涉及一个负反馈回路,其中Wg诱导其自身拮抗剂Nemo的表达。