Han Chun, Yan Dong, Belenkaya Tatyana Y, Lin Xinhua
Division of Developmental Biology, Cincinnati Children's Hospital Medical Center, Cincinnati, OH 45229, USA.
Development. 2005 Feb;132(4):667-79. doi: 10.1242/dev.01636. Epub 2005 Jan 12.
Drosophila Wingless (Wg) is the founding member of the Wnt family of secreted proteins. During the wing development, Wg acts as a morphogen whose concentration gradient provides positional cues for wing patterning. The molecular mechanism(s) of Wg gradient formation is not fully understood. Here, we systematically analyzed the roles of glypicans Dally and Dally-like protein (Dlp), the Wg receptors Frizzled (Fz) and Fz2, and the Wg co-receptor Arrow (Arr) in Wg gradient formation in the wing disc. We demonstrate that both Dally and Dlp are essential and have different roles in Wg gradient formation. The specificities of Dally and Dlp in Wg gradient formation are at least partially achieved by their distinct expression patterns. To our surprise, although Fz2 was suggested to play an essential role in Wg gradient formation by ectopic expression studies, removal of Fz2 activity does not alter the extracellular Wg gradient. Interestingly, removal of both Fz and Fz2, or Arr causes enhanced extracellular Wg levels, which is mainly resulted from upregulated Dlp levels. We further show that Notum, a negative regulator of Wg signaling, downregulates Wg signaling mainly by modifying Dally. Last, we demonstrate that Wg movement is impeded by cells mutant for both dally and dlp. Together, these new findings suggest that the Wg morphogen gradient in the wing disc is mainly controlled by combined actions of Dally and Dlp. We propose that Wg establishes its concentration gradient by a restricted diffusion mechanism involving Dally and Dlp in the wing disc.
果蝇无翅蛋白(Wg)是分泌蛋白Wnt家族的创始成员。在翅膀发育过程中,Wg作为一种形态发生素,其浓度梯度为翅膀图案形成提供位置线索。Wg梯度形成的分子机制尚未完全了解。在这里,我们系统地分析了硫酸乙酰肝素蛋白聚糖Dally和类Dally蛋白(Dlp)、Wg受体卷曲蛋白(Fz)和Fz2以及Wg共受体箭蛋白(Arr)在翅芽中Wg梯度形成中的作用。我们证明,Dally和Dlp在Wg梯度形成中都是必不可少的,且具有不同的作用。Dally和Dlp在Wg梯度形成中的特异性至少部分是通过它们不同的表达模式实现的。令我们惊讶的是,尽管异位表达研究表明Fz2在Wg梯度形成中起关键作用,但去除Fz2活性并不会改变细胞外Wg梯度。有趣的是,同时去除Fz和Fz2或Arr会导致细胞外Wg水平升高,这主要是由于Dlp水平上调所致。我们进一步表明,Wg信号的负调节因子Notum主要通过修饰Dally来下调Wg信号。最后,我们证明,dally和dlp双突变的细胞会阻碍Wg的移动。总之,这些新发现表明,翅芽中的Wg形态发生素梯度主要由Dally和Dlp的联合作用控制。我们提出,Wg通过一种涉及翅芽中Dally和Dlp的受限扩散机制建立其浓度梯度。