Wahl Matthias B, Deng Chuxia, Lewandoski Mark, Pourquié Olivier
Stowers Institute for Medical Research, Kansas City, MO 64110, USA.
Development. 2007 Nov;134(22):4033-41. doi: 10.1242/dev.009167.
Fibroblast growth factor (FGF) signaling plays a crucial role in vertebrate segmentation. The FGF pathway establishes a posterior-to-anterior signaling gradient in the presomitic mesoderm (PSM), which controls cell maturation and is involved in the positioning of segmental boundaries. In addition, FGF signaling was shown to be rhythmically activated in the PSM in response to the segmentation clock. Here, we show that conditional deletion of the FGF receptor gene Fgfr1 abolishes FGF signaling in the mouse PSM, resulting in an arrest of the dynamic cyclic gene expression and ultimately leading to an arrest of segmentation. Pharmacological treatments disrupting FGF signaling in the PSM result in an immediate arrest of periodic WNT activation, whereas NOTCH-dependent oscillations stop only during the next oscillatory cycle. Together, these experiments provide genetic evidence for the role of FGF signaling in segmentation, and identify a signaling hierarchy controlling clock oscillations downstream of FGF signaling in the mouse.
成纤维细胞生长因子(FGF)信号传导在脊椎动物体节形成过程中起着关键作用。FGF信号通路在前体节中胚层(PSM)中建立了一个从后向前的信号梯度,该梯度控制细胞成熟并参与节段边界的定位。此外,研究表明FGF信号在PSM中会响应体节时钟而有节奏地被激活。在此,我们表明条件性缺失FGF受体基因Fgfr1会消除小鼠PSM中的FGF信号,导致动态循环基因表达停滞,并最终导致体节形成停滞。破坏PSM中FGF信号的药物处理会导致周期性WNT激活立即停止,而NOTCH依赖性振荡仅在下一个振荡周期停止。这些实验共同为FGF信号在体节形成中的作用提供了遗传学证据,并确定了小鼠中控制FGF信号下游时钟振荡的信号层次。