Li Yina, Zhang Huimin, Litingtung Ying, Chiang Chin
Department of Cell and Developmental Biology, Vanderbilt University Medical Center, Nashville, TN 37232, USA.
Proc Natl Acad Sci U S A. 2006 Apr 25;103(17):6548-53. doi: 10.1073/pnas.0600124103. Epub 2006 Apr 12.
Sonic hedgehog (Shh) produced in the zone of polarizing activity is the major determinant of anteroposterior development of the amniote limb. The mature and active Shh protein is cholesterol-modified at its C terminus, and the hydrophobic nature of the modification requires the function of Dispatched (mDispA), a seven-pass transmembrane protein, for Shh release from its source. The current model suggests that the cholesterol moiety promotes the spread of Shh gradient in the limb bud. However, this model is inconsistent with findings in Drosophila and not in line with current thoughts on the role of the cholesterol moiety in Shh multimerization. Therefore, it remains unclear how the cholesterol moiety affects the postrelease extracellular behavior of Shh that relates to the shape of its activity gradient in responsive tissues. Here, we report functional analyses in mice showing that Shh lacking cholesterol modification (ShhN) has an increased propensity to spread long-distance, eliciting ectopic Shh pathway activation consistent with target gene expressions and modulating the level of Gli3 processing in the anterior limb mesoderm. These molecular alterations are reflected in the mispatterning of digits in ShhN mutants. Additionally, we provide direct evidence for the long-distance movement of ShhN across the anteroposterior axis of the limb bud. Our findings suggest that the cholesterol moiety regulates the range and shape of the Shh morphogen gradient by restricting rather than promoting the postrelease spread of Shh across the limb bud during early development.
在极化活性区域产生的音猬因子(Shh)是羊膜动物肢体前后发育的主要决定因素。成熟且有活性的Shh蛋白在其C末端进行了胆固醇修饰,这种修饰的疏水性需要七次跨膜蛋白Dispatched(mDispA)的功能,以便Shh从其来源释放。目前的模型表明,胆固醇部分促进了Shh梯度在肢芽中的扩散。然而,该模型与果蝇中的发现不一致,也不符合当前关于胆固醇部分在Shh多聚化中作用的观点。因此,目前尚不清楚胆固醇部分如何影响Shh释放后的细胞外行为,而这与它在反应性组织中的活性梯度形状有关。在这里,我们报告了在小鼠中的功能分析,结果表明缺乏胆固醇修饰的Shh(ShhN)具有增加的长距离扩散倾向,引发与靶基因表达一致的异位Shh信号通路激活,并调节前肢中胚层中Gli3加工的水平。这些分子改变反映在ShhN突变体中手指的图案异常上。此外,我们提供了ShhN跨肢芽前后轴长距离移动的直接证据。我们的研究结果表明,在早期发育过程中,胆固醇部分通过限制而非促进Shh在肢芽中的释放后扩散来调节Shh形态发生素梯度的范围和形状。